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Published in: Neurocritical Care 1/2024

01-04-2023 | Intracranial Hypertension | Pediatric Neurocritical Care and Neuromonitoring

Neuromonitoring after Pediatric Cardiac Arrest: Cerebral Physiology and Injury Stratification

Authors: Julia C. Slovis, Ashley Bach, Forrest Beaulieu, Gabe Zuckerberg, Alexis Topjian, Matthew P. Kirschen

Published in: Neurocritical Care | Issue 1/2024

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Abstract

Background

Significant long-term neurologic disability occurs in survivors of pediatric cardiac arrest, primarily due to hypoxic-ischemic brain injury. Postresuscitation care focuses on preventing secondary injury and the pathophysiologic cascade that leads to neuronal cell death. These injury processes include reperfusion injury, perturbations in cerebral blood flow, disturbed oxygen metabolism, impaired autoregulation, cerebral edema, and hyperthermia. Postresuscitation care also focuses on early injury stratification to allow clinicians to identify patients who could benefit from neuroprotective interventions in clinical trials and enable targeted therapeutics.

Methods

In this review, we provide an overview of postcardiac arrest pathophysiology, explore the role of neuromonitoring in understanding postcardiac arrest cerebral physiology, and summarize the evidence supporting the use of neuromonitoring devices to guide pediatric postcardiac arrest care. We provide an in-depth review of the neuromonitoring modalities that measure cerebral perfusion, oxygenation, and function, as well as neuroimaging, serum biomarkers, and the implications of targeted temperature management.

Results

For each modality, we provide an in-depth review of its impact on treatment, its ability to stratify hypoxic-ischemic brain injury severity, and its role in neuroprognostication.

Conclusion

Potential therapeutic targets and future directions are discussed, with the hope that multimodality monitoring can shift postarrest care from a one-size-fits-all model to an individualized model that uses cerebrovascular physiology to reduce secondary brain injury, increase accuracy of neuroprognostication, and improve outcomes.
Literature
1.
go back to reference Holmberg MJ, Ross CE, Fitzmaurice GM, Chan PS, Duval-Arnould J, Grossestreuer AV, Yankama T, Donnino MW, Andersen LW. American Heart Association’s get with the guidelines-resuscitation I: annual incidence of adult and pediatric in-hospital cardiac arrest in the United States. Circ Cardiovasc Qual Outcomes. 2019;12(7):e005580.PubMedPubMedCentral Holmberg MJ, Ross CE, Fitzmaurice GM, Chan PS, Duval-Arnould J, Grossestreuer AV, Yankama T, Donnino MW, Andersen LW. American Heart Association’s get with the guidelines-resuscitation I: annual incidence of adult and pediatric in-hospital cardiac arrest in the United States. Circ Cardiovasc Qual Outcomes. 2019;12(7):e005580.PubMedPubMedCentral
2.
go back to reference Atkins DL, Everson-Stewart S, Sears GK, Daya M, Osmond MH, Warden CR, Berg RA. Resuscitation outcomes consortium I: Epidemiology and outcomes from out-of-hospital cardiac arrest in children: the resuscitation outcomes consortium epistry-cardiac arrest. Circulation. 2009;119(11):1484–91.PubMedPubMedCentral Atkins DL, Everson-Stewart S, Sears GK, Daya M, Osmond MH, Warden CR, Berg RA. Resuscitation outcomes consortium I: Epidemiology and outcomes from out-of-hospital cardiac arrest in children: the resuscitation outcomes consortium epistry-cardiac arrest. Circulation. 2009;119(11):1484–91.PubMedPubMedCentral
3.
go back to reference Girotra S, Spertus JA, Li Y, Berg RA, Nadkarni VM, Chan PS. American Heart Association Get With the Guidelines-Resuscitation I: Survival trends in pediatric in-hospital cardiac arrests: an analysis from Get With the Guidelines-Resuscitation. Circ Cardiovasc Qual Outcomes. 2013;6(1):42–9.PubMed Girotra S, Spertus JA, Li Y, Berg RA, Nadkarni VM, Chan PS. American Heart Association Get With the Guidelines-Resuscitation I: Survival trends in pediatric in-hospital cardiac arrests: an analysis from Get With the Guidelines-Resuscitation. Circ Cardiovasc Qual Outcomes. 2013;6(1):42–9.PubMed
4.
go back to reference Fink EL, Prince DK, Kaltman JR, Atkins DL, Austin M, Warden C, Hutchison J, Daya M, Goldberg S, Herren H, et al. Unchanged pediatric out-of-hospital cardiac arrest incidence and survival rates with regional variation in North America. Resuscitation. 2016;107:121–8.PubMedPubMedCentral Fink EL, Prince DK, Kaltman JR, Atkins DL, Austin M, Warden C, Hutchison J, Daya M, Goldberg S, Herren H, et al. Unchanged pediatric out-of-hospital cardiac arrest incidence and survival rates with regional variation in North America. Resuscitation. 2016;107:121–8.PubMedPubMedCentral
5.
go back to reference Topjian AA, Berg RA. Pediatric out-of-hospital cardiac arrest. Circulation. 2012;125(19):2374–8.PubMed Topjian AA, Berg RA. Pediatric out-of-hospital cardiac arrest. Circulation. 2012;125(19):2374–8.PubMed
6.
go back to reference Berg RA, Sutton RM, Holubkov R, Nicholson CE, Dean JM, Harrison R, Heidemann S, Meert K, Newth C, Moler F, et al. Ratio of PICU versus ward cardiopulmonary resuscitation events is increasing. Crit Care Med. 2013;41(10):2292–7.PubMedPubMedCentral Berg RA, Sutton RM, Holubkov R, Nicholson CE, Dean JM, Harrison R, Heidemann S, Meert K, Newth C, Moler F, et al. Ratio of PICU versus ward cardiopulmonary resuscitation events is increasing. Crit Care Med. 2013;41(10):2292–7.PubMedPubMedCentral
7.
go back to reference Knudson JD, Neish SR, Cabrera AG, Lowry AW, Shamszad P, Morales DL, Graves DE, Williams EA, Rossano JW. Prevalence and outcomes of pediatric in-hospital cardiopulmonary resuscitation in the United States: an analysis of the Kids’ Inpatient Database*. Crit Care Med. 2012;40(11):2940–4.PubMed Knudson JD, Neish SR, Cabrera AG, Lowry AW, Shamszad P, Morales DL, Graves DE, Williams EA, Rossano JW. Prevalence and outcomes of pediatric in-hospital cardiopulmonary resuscitation in the United States: an analysis of the Kids’ Inpatient Database*. Crit Care Med. 2012;40(11):2940–4.PubMed
8.
go back to reference Lemiale V, Dumas F, Mongardon N, Giovanetti O, Charpentier J, Chiche JD, Carli P, Mira JP, Nolan J, Cariou A. Intensive care unit mortality after cardiac arrest: the relative contribution of shock and brain injury in a large cohort. Intensive Care Med. 2013;39(11):1972–80.PubMed Lemiale V, Dumas F, Mongardon N, Giovanetti O, Charpentier J, Chiche JD, Carli P, Mira JP, Nolan J, Cariou A. Intensive care unit mortality after cardiac arrest: the relative contribution of shock and brain injury in a large cohort. Intensive Care Med. 2013;39(11):1972–80.PubMed
9.
go back to reference Geocadin RG, Callaway CW, Fink EL, Golan E, Greer DM, Ko NU, Lang E, Licht DJ, Marino BS, McNair ND, et al. Standards for studies of neurological prognostication in comatose survivors of cardiac arrest: a scientific statement from the American Heart Association. Circulation. 2019;140(9):e517–42.PubMed Geocadin RG, Callaway CW, Fink EL, Golan E, Greer DM, Ko NU, Lang E, Licht DJ, Marino BS, McNair ND, et al. Standards for studies of neurological prognostication in comatose survivors of cardiac arrest: a scientific statement from the American Heart Association. Circulation. 2019;140(9):e517–42.PubMed
10.
go back to reference Sekhon MS, Ainslie PN, Griesdale DE. Clinical pathophysiology of hypoxic ischemic brain injury after cardiac arrest: a “two-hit” model. Crit Care. 2017;21(1):90.PubMedPubMedCentral Sekhon MS, Ainslie PN, Griesdale DE. Clinical pathophysiology of hypoxic ischemic brain injury after cardiac arrest: a “two-hit” model. Crit Care. 2017;21(1):90.PubMedPubMedCentral
11.
go back to reference Sandroni C, Cronberg T, Sekhon M. Brain injury after cardiac arrest: pathophysiology, treatment, and prognosis. Intensive Care Med. 2021;47(12):1393–414.PubMedPubMedCentral Sandroni C, Cronberg T, Sekhon M. Brain injury after cardiac arrest: pathophysiology, treatment, and prognosis. Intensive Care Med. 2021;47(12):1393–414.PubMedPubMedCentral
13.
go back to reference Fergusson NA, Hoiland RL, Thiara S, Foster D, Gooderham P, Rikhraj K, Grunau B, Christenson J, Ainslie PN, Griesdale DEG, et al. Goal-directed care using invasive neuromonitoring versus standard of care after cardiac arrest: a matched cohort study. Crit Care Med. 2021;49(8):1333–46.PubMed Fergusson NA, Hoiland RL, Thiara S, Foster D, Gooderham P, Rikhraj K, Grunau B, Christenson J, Ainslie PN, Griesdale DEG, et al. Goal-directed care using invasive neuromonitoring versus standard of care after cardiac arrest: a matched cohort study. Crit Care Med. 2021;49(8):1333–46.PubMed
14.
go back to reference Topjian AA, Zhang B, Xiao R, Fung FW, Berg RA, Graham K, Abend NS. Multimodal monitoring including early EEG improves stratification of brain injury severity after pediatric cardiac arrest. Resuscitation. 2021;167:282–8.PubMedPubMedCentral Topjian AA, Zhang B, Xiao R, Fung FW, Berg RA, Graham K, Abend NS. Multimodal monitoring including early EEG improves stratification of brain injury severity after pediatric cardiac arrest. Resuscitation. 2021;167:282–8.PubMedPubMedCentral
15.
go back to reference Grossestreuer AV, Abella BS, Leary M, Perman SM, Fuchs BD, Kolansky DM, Beylin ME, Gaieski DF. Time to awakening and neurologic outcome in therapeutic hypothermia-treated cardiac arrest patients. Resuscitation. 2013;84(12):1741–6.PubMed Grossestreuer AV, Abella BS, Leary M, Perman SM, Fuchs BD, Kolansky DM, Beylin ME, Gaieski DF. Time to awakening and neurologic outcome in therapeutic hypothermia-treated cardiac arrest patients. Resuscitation. 2013;84(12):1741–6.PubMed
16.
go back to reference Gold B, Puertas L, Davis SP, Metzger A, Yannopoulos D, Oakes DA, Lick CJ, Gillquist DL, Holm SY, Olsen JD, et al. Awakening after cardiac arrest and post resuscitation hypothermia: are we pulling the plug too early? Resuscitation. 2014;85(2):211–4.PubMed Gold B, Puertas L, Davis SP, Metzger A, Yannopoulos D, Oakes DA, Lick CJ, Gillquist DL, Holm SY, Olsen JD, et al. Awakening after cardiac arrest and post resuscitation hypothermia: are we pulling the plug too early? Resuscitation. 2014;85(2):211–4.PubMed
17.
go back to reference van den Brule JMD, van der Hoeven JG, Hoedemaekers CWE. Cerebral perfusion and cerebral autoregulation after cardiac arrest. Biomed Res Int. 2018;2018:4143636.PubMedPubMedCentral van den Brule JMD, van der Hoeven JG, Hoedemaekers CWE. Cerebral perfusion and cerebral autoregulation after cardiac arrest. Biomed Res Int. 2018;2018:4143636.PubMedPubMedCentral
18.
go back to reference Markus HS. Cerebral perfusion and stroke. J Neurol Neurosurg Psych. 2004;75(3):353–61. Markus HS. Cerebral perfusion and stroke. J Neurol Neurosurg Psych. 2004;75(3):353–61.
19.
go back to reference Beckstead JE, Tweed WA, Lee J, MacKeen WL. Cerebral blood flow and metabolism in man following cardiac arrest. Stroke. 1978;9(6):569–73.PubMed Beckstead JE, Tweed WA, Lee J, MacKeen WL. Cerebral blood flow and metabolism in man following cardiac arrest. Stroke. 1978;9(6):569–73.PubMed
20.
go back to reference Hoedemaekers CW, Ainslie PN, Hinssen S, Aries MJ, Bisschops LL, Hofmeijer J, van der Hoeven JG. Low cerebral blood flow after cardiac arrest is not associated with anaerobic cerebral metabolism. Resuscitation. 2017;120:45–50.PubMed Hoedemaekers CW, Ainslie PN, Hinssen S, Aries MJ, Bisschops LL, Hofmeijer J, van der Hoeven JG. Low cerebral blood flow after cardiac arrest is not associated with anaerobic cerebral metabolism. Resuscitation. 2017;120:45–50.PubMed
21.
go back to reference Buunk G, van der Hoeven JG, Meinders AE. Cerebral blood flow after cardiac arrest. Neth J Med. 2000;57(3):106–12.PubMed Buunk G, van der Hoeven JG, Meinders AE. Cerebral blood flow after cardiac arrest. Neth J Med. 2000;57(3):106–12.PubMed
22.
go back to reference Laverriere EK, Polansky M, French B, Nadkarni VM, Berg RA, Topjian AA. Association of duration of hypotension with survival after pediatric cardiac arrest. Pediatr Crit Care Med. 2020;21(2):143–9.PubMed Laverriere EK, Polansky M, French B, Nadkarni VM, Berg RA, Topjian AA. Association of duration of hypotension with survival after pediatric cardiac arrest. Pediatr Crit Care Med. 2020;21(2):143–9.PubMed
23.
go back to reference Iordanova B, Li L, Clark RSB, Manole MD. Alterations in cerebral blood flow after resuscitation from cardiac arrest. Front Pediatr. 2017;5:174.PubMedPubMedCentral Iordanova B, Li L, Clark RSB, Manole MD. Alterations in cerebral blood flow after resuscitation from cardiac arrest. Front Pediatr. 2017;5:174.PubMedPubMedCentral
24.
go back to reference Wu C, Honarmand AR, Schnell S, Kuhn R, Schoeneman SE, Ansari SA, Carr J, Markl M, Shaibani A. Age-related changes of normal cerebral and cardiac blood flow in children and adults aged 7 months to 61 Years. J Am Heart Assoc. 2016;5(1):e002657.PubMedPubMedCentral Wu C, Honarmand AR, Schnell S, Kuhn R, Schoeneman SE, Ansari SA, Carr J, Markl M, Shaibani A. Age-related changes of normal cerebral and cardiac blood flow in children and adults aged 7 months to 61 Years. J Am Heart Assoc. 2016;5(1):e002657.PubMedPubMedCentral
25.
go back to reference Wang X, Yang B, Ma Y, Gao P, Wang Y, Chen Y, Jiao L, Ling F, Zhao G. Comparison of monitoring of cerebral blood flow by c-FLOW and transcranial doppler in carotid endarterectomy. World Neurosurg. 2018;111:e686–92.PubMed Wang X, Yang B, Ma Y, Gao P, Wang Y, Chen Y, Jiao L, Ling F, Zhao G. Comparison of monitoring of cerebral blood flow by c-FLOW and transcranial doppler in carotid endarterectomy. World Neurosurg. 2018;111:e686–92.PubMed
26.
go back to reference Hsu C, Alaraj A, Linninger AA. Cerebral blood flow assessment by digital subtraction angiography. Radiol Open J. 2016;1(1):21–30. Hsu C, Alaraj A, Linninger AA. Cerebral blood flow assessment by digital subtraction angiography. Radiol Open J. 2016;1(1):21–30.
27.
go back to reference Chiron C, Raynaud C, Tzourio N, Diebler C, Dulac O, Zilbovicius M, Syrota A. Regional cerebral blood flow by SPECT imaging in Sturge-Weber disease: an aid for diagnosis. J Neurol Neurosurg Psych. 1989;52(12):1402–9. Chiron C, Raynaud C, Tzourio N, Diebler C, Dulac O, Zilbovicius M, Syrota A. Regional cerebral blood flow by SPECT imaging in Sturge-Weber disease: an aid for diagnosis. J Neurol Neurosurg Psych. 1989;52(12):1402–9.
28.
go back to reference Bauer AM, Amin-Hanjani S, Alaraj A, Charbel FT. Quantitative magnetic resonance angiography in the evaluation of the subclavian steal syndrome: report of 5 patients. J Neuroimag. 2009;19(3):250–2. Bauer AM, Amin-Hanjani S, Alaraj A, Charbel FT. Quantitative magnetic resonance angiography in the evaluation of the subclavian steal syndrome: report of 5 patients. J Neuroimag. 2009;19(3):250–2.
29.
go back to reference Zhao M, Amin-Hanjani S, Ruland S, Curcio AP, Ostergren L, Charbel FT. Regional cerebral blood flow using quantitative MR angiography. AJNR Am J Neuroradiol. 2007;28(8):1470–3.PubMedPubMedCentral Zhao M, Amin-Hanjani S, Ruland S, Curcio AP, Ostergren L, Charbel FT. Regional cerebral blood flow using quantitative MR angiography. AJNR Am J Neuroradiol. 2007;28(8):1470–3.PubMedPubMedCentral
30.
go back to reference Ibaraki M, Ito H, Shimosegawa E, Toyoshima H, Ishigame K, Takahashi K, Kanno I, Miura S. Cerebral vascular mean transit time in healthy humans: a comparative study with PET and dynamic susceptibility contrast-enhanced MRI. J Cereb Blood Flow Metab. 2007;27(2):404–13.PubMed Ibaraki M, Ito H, Shimosegawa E, Toyoshima H, Ishigame K, Takahashi K, Kanno I, Miura S. Cerebral vascular mean transit time in healthy humans: a comparative study with PET and dynamic susceptibility contrast-enhanced MRI. J Cereb Blood Flow Metab. 2007;27(2):404–13.PubMed
31.
go back to reference Iida H, Itoh H, Nakazawa M, Hatazawa J, Nishimura H, Onishi Y, Uemura K. Quantitative mapping of regional cerebral blood flow using iodine-123-IMP and SPECT. J Nucl Med. 1994;35(12):2019–30.PubMed Iida H, Itoh H, Nakazawa M, Hatazawa J, Nishimura H, Onishi Y, Uemura K. Quantitative mapping of regional cerebral blood flow using iodine-123-IMP and SPECT. J Nucl Med. 1994;35(12):2019–30.PubMed
32.
go back to reference Francoeur CL, Lee J, Dangayach N, Gidwani U, Mayer SA. Non-invasive cerebral perfusion monitoring in cardiac arrest patients: a prospective cohort study. Clin Neurol Neurosurg. 2020;196:105970.PubMed Francoeur CL, Lee J, Dangayach N, Gidwani U, Mayer SA. Non-invasive cerebral perfusion monitoring in cardiac arrest patients: a prospective cohort study. Clin Neurol Neurosurg. 2020;196:105970.PubMed
33.
go back to reference Taccone FS, Crippa IA, Creteur J, Rasulo F. Estimated cerebral perfusion pressure among post-cardiac arrest survivors. Intensive Care Med. 2018;44(6):966–7.PubMed Taccone FS, Crippa IA, Creteur J, Rasulo F. Estimated cerebral perfusion pressure among post-cardiac arrest survivors. Intensive Care Med. 2018;44(6):966–7.PubMed
34.
go back to reference Hwang M, Sridharan A, Freeman CW, Viaene AN, Kilbaugh TJ. Contrast-Enhanced Ultrasound of Brain Perfusion in Cardiopulmonary Resuscitation. Ultrasound Q. 2022. Hwang M, Sridharan A, Freeman CW, Viaene AN, Kilbaugh TJ. Contrast-Enhanced Ultrasound of Brain Perfusion in Cardiopulmonary Resuscitation. Ultrasound Q. 2022.
35.
go back to reference Hwang M, Barnewolt CE, Jungert J, Prada F, Sridharan A, Didier RA. Contrast-enhanced ultrasound of the pediatric brain. Pediatr Radiol. 2021;51(12):2270–83.PubMed Hwang M, Barnewolt CE, Jungert J, Prada F, Sridharan A, Didier RA. Contrast-enhanced ultrasound of the pediatric brain. Pediatr Radiol. 2021;51(12):2270–83.PubMed
36.
go back to reference Peyrounette M, Davit Y, Quintard M, Lorthois S. Multiscale modelling of blood flow in cerebral microcirculation: details at capillary scale control accuracy at the level of the cortex. PLoS ONE. 2018;13(1):e0189474.PubMedPubMedCentral Peyrounette M, Davit Y, Quintard M, Lorthois S. Multiscale modelling of blood flow in cerebral microcirculation: details at capillary scale control accuracy at the level of the cortex. PLoS ONE. 2018;13(1):e0189474.PubMedPubMedCentral
37.
go back to reference Pennings FA, Ince C, Bouma GJ. Continuous real-time visualization of the human cerebral microcirculation during arteriovenous malformation surgery using orthogonal polarization spectral imaging. Neurosurgery. 2006;59(1):167–71 (discussion 167–171).PubMed Pennings FA, Ince C, Bouma GJ. Continuous real-time visualization of the human cerebral microcirculation during arteriovenous malformation surgery using orthogonal polarization spectral imaging. Neurosurgery. 2006;59(1):167–71 (discussion 167–171).PubMed
38.
go back to reference Gould IG, Tsai P, Kleinfeld D, Linninger A. The capillary bed offers the largest hemodynamic resistance to the cortical blood supply. J Cereb Blood Flow Metab. 2017;37(1):52–68.PubMed Gould IG, Tsai P, Kleinfeld D, Linninger A. The capillary bed offers the largest hemodynamic resistance to the cortical blood supply. J Cereb Blood Flow Metab. 2017;37(1):52–68.PubMed
39.
go back to reference Linninger AA, Gould IG, Marrinan T, Hsu CY, Chojecki M, Alaraj A. Cerebral microcirculation and oxygen tension in the human secondary cortex. Ann Biomed Eng. 2013;41(11):2264–84.PubMed Linninger AA, Gould IG, Marrinan T, Hsu CY, Chojecki M, Alaraj A. Cerebral microcirculation and oxygen tension in the human secondary cortex. Ann Biomed Eng. 2013;41(11):2264–84.PubMed
40.
go back to reference Tasneem N, Samaniego EA, Pieper C, Leira EC, Adams HP, Hasan D, Ortega-Gutierrez S. Brain multimodality monitoring: a new tool in neurocritical care of comatose patients. Crit Care Res Pract. 2017;2017:6097265.PubMedPubMedCentral Tasneem N, Samaniego EA, Pieper C, Leira EC, Adams HP, Hasan D, Ortega-Gutierrez S. Brain multimodality monitoring: a new tool in neurocritical care of comatose patients. Crit Care Res Pract. 2017;2017:6097265.PubMedPubMedCentral
41.
go back to reference Lovett ME, Maa T, Chung MG, O’Brien NF. Cerebral blood flow velocity and autoregulation in paediatric patients following a global hypoxic-ischaemic insult. Resuscitation. 2018;126:191–6.PubMed Lovett ME, Maa T, Chung MG, O’Brien NF. Cerebral blood flow velocity and autoregulation in paediatric patients following a global hypoxic-ischaemic insult. Resuscitation. 2018;126:191–6.PubMed
42.
go back to reference Lin JJ, Hsia SH, Wang HS, Chiang MC, Lin KL. Transcranial Doppler ultrasound in therapeutic hypothermia for children after resuscitation. Resuscitation. 2015;89:182–7.PubMed Lin JJ, Hsia SH, Wang HS, Chiang MC, Lin KL. Transcranial Doppler ultrasound in therapeutic hypothermia for children after resuscitation. Resuscitation. 2015;89:182–7.PubMed
43.
go back to reference Doepp Connolly F, Reitemeier J, Storm C, Hasper D, Schreiber SJ. Duplex sonography of cerebral blood flow after cardiac arrest–a prospective observational study. Resuscitation. 2014;85(4):516–21.PubMed Doepp Connolly F, Reitemeier J, Storm C, Hasper D, Schreiber SJ. Duplex sonography of cerebral blood flow after cardiac arrest–a prospective observational study. Resuscitation. 2014;85(4):516–21.PubMed
44.
go back to reference Lemiale V, Huet O, Vigue B, Mathonnet A, Spaulding C, Mira JP, Carli P, Duranteau J, Cariou A. Changes in cerebral blood flow and oxygen extraction during post-resuscitation syndrome. Resuscitation. 2008;76(1):17–24.PubMed Lemiale V, Huet O, Vigue B, Mathonnet A, Spaulding C, Mira JP, Carli P, Duranteau J, Cariou A. Changes in cerebral blood flow and oxygen extraction during post-resuscitation syndrome. Resuscitation. 2008;76(1):17–24.PubMed
45.
go back to reference Buunk G, van der Hoeven JG, Meinders AE. Cerebrovascular reactivity in comatose patients resuscitated from a cardiac arrest. Stroke. 1997;28(8):1569–73.PubMed Buunk G, van der Hoeven JG, Meinders AE. Cerebrovascular reactivity in comatose patients resuscitated from a cardiac arrest. Stroke. 1997;28(8):1569–73.PubMed
46.
go back to reference Iida K, Satoh H, Arita K, Nakahara T, Kurisu K, Ohtani M. Delayed hyperemia causing intracranial hypertension after cardiopulmonary resuscitation. Crit Care Med. 1997;25(6):971–6.PubMed Iida K, Satoh H, Arita K, Nakahara T, Kurisu K, Ohtani M. Delayed hyperemia causing intracranial hypertension after cardiopulmonary resuscitation. Crit Care Med. 1997;25(6):971–6.PubMed
47.
go back to reference Alvarez-Fernandez JA, Perez-Quintero R. Use of transcranial Doppler ultrasound in the management of post-cardiac arrest syndrome. Resuscitation. 2009;80(11):1321–2.PubMed Alvarez-Fernandez JA, Perez-Quintero R. Use of transcranial Doppler ultrasound in the management of post-cardiac arrest syndrome. Resuscitation. 2009;80(11):1321–2.PubMed
48.
go back to reference Bisschops LL, Hoedemaekers CW, Simons KS, van der Hoeven JG. Preserved metabolic coupling and cerebrovascular reactivity during mild hypothermia after cardiac arrest. Crit Care Med. 2010;38(7):1542–7.PubMed Bisschops LL, Hoedemaekers CW, Simons KS, van der Hoeven JG. Preserved metabolic coupling and cerebrovascular reactivity during mild hypothermia after cardiac arrest. Crit Care Med. 2010;38(7):1542–7.PubMed
49.
go back to reference van den Brule JM, Vinke E, van Loon LM, van der Hoeven JG, Hoedemaekers CW. Middle cerebral artery flow, the critical closing pressure, and the optimal mean arterial pressure in comatose cardiac arrest survivors-an observational study. Resuscitation. 2017;110:85–9.PubMed van den Brule JM, Vinke E, van Loon LM, van der Hoeven JG, Hoedemaekers CW. Middle cerebral artery flow, the critical closing pressure, and the optimal mean arterial pressure in comatose cardiac arrest survivors-an observational study. Resuscitation. 2017;110:85–9.PubMed
50.
go back to reference Hoiland RL, Ainslie PN, Wellington CL, Cooper J, Stukas S, Thiara S, Foster D, Fergusson NA, Conway EM, Menon DK, et al. Brain hypoxia is associated with neuroglial injury in humans post-cardiac arrest. Circ Res. 2021;129(5):583–97.PubMedPubMedCentral Hoiland RL, Ainslie PN, Wellington CL, Cooper J, Stukas S, Thiara S, Foster D, Fergusson NA, Conway EM, Menon DK, et al. Brain hypoxia is associated with neuroglial injury in humans post-cardiac arrest. Circ Res. 2021;129(5):583–97.PubMedPubMedCentral
51.
go back to reference Kim KH, Hong KJ, Shin SD, Song KJ, Ro YS, Jeong J, Kim TH, Park JH, Lim H, Kang HJ. Hypertonic versus isotonic crystalloid infusion for cerebral perfusion pressure in a porcine experimental cardiac arrest model. Am J Emerg Med. 2021;50:224–31.PubMed Kim KH, Hong KJ, Shin SD, Song KJ, Ro YS, Jeong J, Kim TH, Park JH, Lim H, Kang HJ. Hypertonic versus isotonic crystalloid infusion for cerebral perfusion pressure in a porcine experimental cardiac arrest model. Am J Emerg Med. 2021;50:224–31.PubMed
52.
go back to reference Duhem H, Moore JC, Rojas-Salvador C, Salverda B, Lick M, Pepe P, Labarere J, Debaty G, Lurie KG. Improving post-cardiac arrest cerebral perfusion pressure by elevating the head and thorax. Resuscitation. 2021;159:45–53.PubMed Duhem H, Moore JC, Rojas-Salvador C, Salverda B, Lick M, Pepe P, Labarere J, Debaty G, Lurie KG. Improving post-cardiac arrest cerebral perfusion pressure by elevating the head and thorax. Resuscitation. 2021;159:45–53.PubMed
53.
go back to reference Topjian AA, Raymond TT, Atkins D, Chan M, Duff JP, Joyner BL Jr, Lasa JJ, Lavonas EJ, Levy A, Mahgoub M, et al. Part 4: pediatric basic and advanced life support: 2020 American Heart Association guidelines for cardiopulmonary resuscitation and emergency cardiovascular care. Circulation. 2020;142(16_suppl_2):S469–523.PubMed Topjian AA, Raymond TT, Atkins D, Chan M, Duff JP, Joyner BL Jr, Lasa JJ, Lavonas EJ, Levy A, Mahgoub M, et al. Part 4: pediatric basic and advanced life support: 2020 American Heart Association guidelines for cardiopulmonary resuscitation and emergency cardiovascular care. Circulation. 2020;142(16_suppl_2):S469–523.PubMed
54.
go back to reference Yenari M, Kitagawa K, Lyden P, Perez-Pinzon M. Metabolic downregulation: a key to successful neuroprotection? Stroke. 2008;39(10):2910–7.PubMedPubMedCentral Yenari M, Kitagawa K, Lyden P, Perez-Pinzon M. Metabolic downregulation: a key to successful neuroprotection? Stroke. 2008;39(10):2910–7.PubMedPubMedCentral
55.
go back to reference Laws JC, Jordan LC, Pagano LM, Wellons JC 3rd, Wolf MS. Multimodal neurologic monitoring in children with acute brain injury. Pediatr Neurol. 2022;129:62–71.PubMedPubMedCentral Laws JC, Jordan LC, Pagano LM, Wellons JC 3rd, Wolf MS. Multimodal neurologic monitoring in children with acute brain injury. Pediatr Neurol. 2022;129:62–71.PubMedPubMedCentral
56.
go back to reference Dean JM, McComb JG. Intracranial pressure monitoring in severe pediatric near-drowning. Neurosurgery. 1981;9(6):627–30.PubMed Dean JM, McComb JG. Intracranial pressure monitoring in severe pediatric near-drowning. Neurosurgery. 1981;9(6):627–30.PubMed
57.
go back to reference Nussbaum E, Galant SP. Intracranial pressure monitoring as a guide to prognosis in the nearly drowned, severely comatose child. J Pediatr. 1983;102(2):215–8.PubMed Nussbaum E, Galant SP. Intracranial pressure monitoring as a guide to prognosis in the nearly drowned, severely comatose child. J Pediatr. 1983;102(2):215–8.PubMed
58.
go back to reference Callaway CW, Donnino MW, Fink EL, Geocadin RG, Golan E, Kern KB, Leary M, Meurer WJ, Peberdy MA, Thompson TM, et al. Part 8: post-cardiac arrest care: 2015 American Heart Association guidelines update for cardiopulmonary resuscitation and emergency cardiovascular care. Circulation. 2015;132(18 Suppl 2):S465-482.PubMedPubMedCentral Callaway CW, Donnino MW, Fink EL, Geocadin RG, Golan E, Kern KB, Leary M, Meurer WJ, Peberdy MA, Thompson TM, et al. Part 8: post-cardiac arrest care: 2015 American Heart Association guidelines update for cardiopulmonary resuscitation and emergency cardiovascular care. Circulation. 2015;132(18 Suppl 2):S465-482.PubMedPubMedCentral
59.
go back to reference Neumar RW, Nolan JP, Adrie C, Aibiki M, Berg RA, Bottiger BW, Callaway C, Clark RS, Geocadin RG, Jauch EC, et al. Post-cardiac arrest syndrome: epidemiology, pathophysiology, treatment, and prognostication. A consensus statement from the International Liaison Committee on Resuscitation (American Heart Association, Australian and New Zealand Council on Resuscitation, European Resuscitation Council, Heart and Stroke Foundation of Canada, InterAmerican Heart Foundation, Resuscitation Council of Asia, and the Resuscitation Council of Southern Africa); the American Heart Association Emergency Cardiovascular Care Committee; the Council on Cardiovascular Surgery and Anesthesia; the Council on Cardiopulmonary, Perioperative, and Critical Care; the Council on Clinical Cardiology; and the Stroke Council. Circulation. 2008;118(23):2452–83.PubMed Neumar RW, Nolan JP, Adrie C, Aibiki M, Berg RA, Bottiger BW, Callaway C, Clark RS, Geocadin RG, Jauch EC, et al. Post-cardiac arrest syndrome: epidemiology, pathophysiology, treatment, and prognostication. A consensus statement from the International Liaison Committee on Resuscitation (American Heart Association, Australian and New Zealand Council on Resuscitation, European Resuscitation Council, Heart and Stroke Foundation of Canada, InterAmerican Heart Foundation, Resuscitation Council of Asia, and the Resuscitation Council of Southern Africa); the American Heart Association Emergency Cardiovascular Care Committee; the Council on Cardiovascular Surgery and Anesthesia; the Council on Cardiopulmonary, Perioperative, and Critical Care; the Council on Clinical Cardiology; and the Stroke Council. Circulation. 2008;118(23):2452–83.PubMed
60.
go back to reference O’Brien NF, Maa T, Reuter-Rice K. Noninvasive screening for intracranial hypertension in children with acute, severe traumatic brain injury. J Neurosurg Pediatr. 2015;16(4):420–5.PubMed O’Brien NF, Maa T, Reuter-Rice K. Noninvasive screening for intracranial hypertension in children with acute, severe traumatic brain injury. J Neurosurg Pediatr. 2015;16(4):420–5.PubMed
61.
go back to reference Skrifvars MB, Sekhon M, Aneman EA. Monitoring and modifying brain oxygenation in patients at risk of hypoxic ischaemic brain injury after cardiac arrest. Crit Care. 2021;25(1):312.PubMedPubMedCentral Skrifvars MB, Sekhon M, Aneman EA. Monitoring and modifying brain oxygenation in patients at risk of hypoxic ischaemic brain injury after cardiac arrest. Crit Care. 2021;25(1):312.PubMedPubMedCentral
62.
go back to reference Topjian AA, de Caen A, Wainwright MS, Abella BS, Abend NS, Atkins DL, Bembea MM, Fink EL, Guerguerian AM, Haskell SE, et al. Pediatric post-cardiac arrest care: a scientific statement from the American Heart Association. Circulation. 2019;140(6):e194–233.PubMed Topjian AA, de Caen A, Wainwright MS, Abella BS, Abend NS, Atkins DL, Bembea MM, Fink EL, Guerguerian AM, Haskell SE, et al. Pediatric post-cardiac arrest care: a scientific statement from the American Heart Association. Circulation. 2019;140(6):e194–233.PubMed
63.
go back to reference Tan CO. Defining the characteristic relationship between arterial pressure and cerebral flow. J Appl Physiol (1985). 2012;113(8):1194–200.PubMed Tan CO. Defining the characteristic relationship between arterial pressure and cerebral flow. J Appl Physiol (1985). 2012;113(8):1194–200.PubMed
64.
go back to reference Willie CK, Tzeng YC, Fisher JA, Ainslie PN. Integrative regulation of human brain blood flow. J Physiol. 2014;592(5):841–59.PubMedPubMedCentral Willie CK, Tzeng YC, Fisher JA, Ainslie PN. Integrative regulation of human brain blood flow. J Physiol. 2014;592(5):841–59.PubMedPubMedCentral
65.
go back to reference Sundgreen C, Larsen FS, Herzog TM, Knudsen GM, Boesgaard S, Aldershvile J. Autoregulation of cerebral blood flow in patients resuscitated from cardiac arrest. Stroke. 2001;32(1):128–32.PubMed Sundgreen C, Larsen FS, Herzog TM, Knudsen GM, Boesgaard S, Aldershvile J. Autoregulation of cerebral blood flow in patients resuscitated from cardiac arrest. Stroke. 2001;32(1):128–32.PubMed
66.
go back to reference Kim MN, Edlow BL, Durduran T, Frangos S, Mesquita RC, Levine JM, Greenberg JH, Yodh AG, Detre JA. Continuous optical monitoring of cerebral hemodynamics during head-of-bed manipulation in brain-injured adults. Neurocrit Care. 2014;20(3):443–53.PubMedPubMedCentral Kim MN, Edlow BL, Durduran T, Frangos S, Mesquita RC, Levine JM, Greenberg JH, Yodh AG, Detre JA. Continuous optical monitoring of cerebral hemodynamics during head-of-bed manipulation in brain-injured adults. Neurocrit Care. 2014;20(3):443–53.PubMedPubMedCentral
67.
go back to reference Kim MN, Durduran T, Frangos S, Edlow BL, Buckley EM, Moss HE, Zhou C, Yu G, Choe R, Maloney-Wilensky E, et al. Noninvasive measurement of cerebral blood flow and blood oxygenation using near-infrared and diffuse correlation spectroscopies in critically brain-injured adults. Neurocrit Care. 2010;12(2):173–80.PubMedPubMedCentral Kim MN, Durduran T, Frangos S, Edlow BL, Buckley EM, Moss HE, Zhou C, Yu G, Choe R, Maloney-Wilensky E, et al. Noninvasive measurement of cerebral blood flow and blood oxygenation using near-infrared and diffuse correlation spectroscopies in critically brain-injured adults. Neurocrit Care. 2010;12(2):173–80.PubMedPubMedCentral
68.
go back to reference Kirschen MP, Majmudar T, Beaulieu F, Burnett R, Shaik M, Morgan RW, Baker W, Ko T, Balu R, Agarwal K, et al. Deviations from NIRS-derived optimal blood pressure are associated with worse outcomes after pediatric cardiac arrest. Resuscitation. 2021;168:110–8.PubMedPubMedCentral Kirschen MP, Majmudar T, Beaulieu F, Burnett R, Shaik M, Morgan RW, Baker W, Ko T, Balu R, Agarwal K, et al. Deviations from NIRS-derived optimal blood pressure are associated with worse outcomes after pediatric cardiac arrest. Resuscitation. 2021;168:110–8.PubMedPubMedCentral
69.
go back to reference Favilla CG, Mesquita RC, Mullen M, Durduran T, Lu X, Kim MN, Minkoff DL, Kasner SE, Greenberg JH, Yodh AG, et al. Optical bedside monitoring of cerebral blood flow in acute ischemic stroke patients during head-of-bed manipulation. Stroke. 2014;45(5):1269–74.PubMedPubMedCentral Favilla CG, Mesquita RC, Mullen M, Durduran T, Lu X, Kim MN, Minkoff DL, Kasner SE, Greenberg JH, Yodh AG, et al. Optical bedside monitoring of cerebral blood flow in acute ischemic stroke patients during head-of-bed manipulation. Stroke. 2014;45(5):1269–74.PubMedPubMedCentral
70.
go back to reference Lynch JM, Ko T, Busch DR, Newland JJ, Winters ME, Mensah-Brown K, Boorady TW, Xiao R, Nicolson SC, Montenegro LM, et al. Preoperative cerebral hemodynamics from birth to surgery in neonates with critical congenital heart disease. J Thorac Cardiovasc Surg. 2018;156(4):1657–64.PubMedPubMedCentral Lynch JM, Ko T, Busch DR, Newland JJ, Winters ME, Mensah-Brown K, Boorady TW, Xiao R, Nicolson SC, Montenegro LM, et al. Preoperative cerebral hemodynamics from birth to surgery in neonates with critical congenital heart disease. J Thorac Cardiovasc Surg. 2018;156(4):1657–64.PubMedPubMedCentral
71.
go back to reference Busch DR, Balu R, Baker WB, Guo W, He L, Diop M, Milej D, Kavuri V, Amendolia O, St Lawrence K, et al. Detection of brain hypoxia based on noninvasive optical monitoring of cerebral blood flow with diffuse correlation spectroscopy. Neurocrit Care. 2019;30(1):72–80.PubMedPubMedCentral Busch DR, Balu R, Baker WB, Guo W, He L, Diop M, Milej D, Kavuri V, Amendolia O, St Lawrence K, et al. Detection of brain hypoxia based on noninvasive optical monitoring of cerebral blood flow with diffuse correlation spectroscopy. Neurocrit Care. 2019;30(1):72–80.PubMedPubMedCentral
72.
go back to reference He L, Baker WB, Milej D, Kavuri VC, Mesquita RC, Busch DR, Abramson K, Jiang JY, Diop M, St Lawrence K, et al. Noninvasive continuous optical monitoring of absolute cerebral blood flow in critically ill adults. Neurophotonics. 2018;5(4):045006.PubMedPubMedCentral He L, Baker WB, Milej D, Kavuri VC, Mesquita RC, Busch DR, Abramson K, Jiang JY, Diop M, St Lawrence K, et al. Noninvasive continuous optical monitoring of absolute cerebral blood flow in critically ill adults. Neurophotonics. 2018;5(4):045006.PubMedPubMedCentral
73.
go back to reference Kirschen MP, Morgan RW, Majmudar T, Landis WP, Ko T, Balu R, Balasubramanian S, Topjian A, Sutton RM, Berg RA, et al. The association between early impairment in cerebral autoregulation and outcome in a pediatric swine model of cardiac arrest. Resusc Plus. 2020;4:100051.PubMedPubMedCentral Kirschen MP, Morgan RW, Majmudar T, Landis WP, Ko T, Balu R, Balasubramanian S, Topjian A, Sutton RM, Berg RA, et al. The association between early impairment in cerebral autoregulation and outcome in a pediatric swine model of cardiac arrest. Resusc Plus. 2020;4:100051.PubMedPubMedCentral
74.
go back to reference Ameloot K, Genbrugge C, Meex I, Jans F, Boer W, Vander Laenen M, Ferdinande B, Mullens W, Dupont M, Dens J, et al. An observational near-infrared spectroscopy study on cerebral autoregulation in post-cardiac arrest patients: time to drop “one-size-fits-all” hemodynamic targets? Resuscitation. 2015;90:121–6.PubMed Ameloot K, Genbrugge C, Meex I, Jans F, Boer W, Vander Laenen M, Ferdinande B, Mullens W, Dupont M, Dens J, et al. An observational near-infrared spectroscopy study on cerebral autoregulation in post-cardiac arrest patients: time to drop “one-size-fits-all” hemodynamic targets? Resuscitation. 2015;90:121–6.PubMed
75.
go back to reference Balu R, Rajagopalan S, Baghshomali S, Kirschen M, Amurthur A, Kofke WA, Abella BS. Cerebrovascular pressure reactivity and intracranial pressure are associated with neurologic outcome after hypoxic-ischemic brain injury. Resuscitation. 2021;164:114–21.PubMed Balu R, Rajagopalan S, Baghshomali S, Kirschen M, Amurthur A, Kofke WA, Abella BS. Cerebrovascular pressure reactivity and intracranial pressure are associated with neurologic outcome after hypoxic-ischemic brain injury. Resuscitation. 2021;164:114–21.PubMed
76.
go back to reference Lee JK, Brady KM, Chung SE, Jennings JM, Whitaker EE, Aganga D, Easley RB, Heitmiller K, Jamrogowicz JL, Larson AC, et al. A pilot study of cerebrovascular reactivity autoregulation after pediatric cardiac arrest. Resuscitation. 2014;85(10):1387–93.PubMedPubMedCentral Lee JK, Brady KM, Chung SE, Jennings JM, Whitaker EE, Aganga D, Easley RB, Heitmiller K, Jamrogowicz JL, Larson AC, et al. A pilot study of cerebrovascular reactivity autoregulation after pediatric cardiac arrest. Resuscitation. 2014;85(10):1387–93.PubMedPubMedCentral
77.
go back to reference Sekhon MS, Smielewski P, Bhate TD, Brasher PM, Foster D, Menon DK, Gupta AK, Czosnyka M, Henderson WR, Gin K, et al. Using the relationship between brain tissue regional saturation of oxygen and mean arterial pressure to determine the optimal mean arterial pressure in patients following cardiac arrest: a pilot proof-of-concept study. Resuscitation. 2016;106:120–5.PubMed Sekhon MS, Smielewski P, Bhate TD, Brasher PM, Foster D, Menon DK, Gupta AK, Czosnyka M, Henderson WR, Gin K, et al. Using the relationship between brain tissue regional saturation of oxygen and mean arterial pressure to determine the optimal mean arterial pressure in patients following cardiac arrest: a pilot proof-of-concept study. Resuscitation. 2016;106:120–5.PubMed
78.
go back to reference Pham P, Bindra J, Chuan A, Jaeger M, Aneman A. Are changes in cerebrovascular autoregulation following cardiac arrest associated with neurological outcome? Results of a pilot study. Resuscitation. 2015;96:192–8.PubMed Pham P, Bindra J, Chuan A, Jaeger M, Aneman A. Are changes in cerebrovascular autoregulation following cardiac arrest associated with neurological outcome? Results of a pilot study. Resuscitation. 2015;96:192–8.PubMed
79.
go back to reference Carrasco M, Perin J, Jennings JM, Parkinson C, Gilmore MM, Chavez-Valdez R, Massaro AN, Koehler RC, Northington FJ, Tekes A, et al. Cerebral autoregulation and conventional and diffusion tensor imaging magnetic resonance imaging in neonatal hypoxic-ischemic encephalopathy. Pediatr Neurol. 2018;82:36–43.PubMedPubMedCentral Carrasco M, Perin J, Jennings JM, Parkinson C, Gilmore MM, Chavez-Valdez R, Massaro AN, Koehler RC, Northington FJ, Tekes A, et al. Cerebral autoregulation and conventional and diffusion tensor imaging magnetic resonance imaging in neonatal hypoxic-ischemic encephalopathy. Pediatr Neurol. 2018;82:36–43.PubMedPubMedCentral
80.
go back to reference Burton VJ, Gerner G, Cristofalo E, Chung SE, Jennings JM, Parkinson C, Koehler RC, Chavez-Valdez R, Johnston MV, Northington FJ, et al. A pilot cohort study of cerebral autoregulation and 2-year neurodevelopmental outcomes in neonates with hypoxic-ischemic encephalopathy who received therapeutic hypothermia. BMC Neurol. 2015;15:209.PubMedPubMedCentral Burton VJ, Gerner G, Cristofalo E, Chung SE, Jennings JM, Parkinson C, Koehler RC, Chavez-Valdez R, Johnston MV, Northington FJ, et al. A pilot cohort study of cerebral autoregulation and 2-year neurodevelopmental outcomes in neonates with hypoxic-ischemic encephalopathy who received therapeutic hypothermia. BMC Neurol. 2015;15:209.PubMedPubMedCentral
81.
go back to reference Sekhon MS, Gooderham P, Menon DK, Brasher PMA, Foster D, Cardim D, Czosnyka M, Smielewski P, Gupta AK, Ainslie PN, et al. The burden of brain hypoxia and optimal mean arterial pressure in patients with hypoxic ischemic brain injury after cardiac arrest. Crit Care Med. 2019;47(7):960–9.PubMed Sekhon MS, Gooderham P, Menon DK, Brasher PMA, Foster D, Cardim D, Czosnyka M, Smielewski P, Gupta AK, Ainslie PN, et al. The burden of brain hypoxia and optimal mean arterial pressure in patients with hypoxic ischemic brain injury after cardiac arrest. Crit Care Med. 2019;47(7):960–9.PubMed
82.
go back to reference Rikhraj KJK, Wood MD, Hoiland RL, Thiara S, Griesdale DEG, Sekhon MS. Determining Optimal mean arterial pressure after cardiac arrest: a systematic review. Neurocrit Care. 2021;34(2):621–34.PubMed Rikhraj KJK, Wood MD, Hoiland RL, Thiara S, Griesdale DEG, Sekhon MS. Determining Optimal mean arterial pressure after cardiac arrest: a systematic review. Neurocrit Care. 2021;34(2):621–34.PubMed
83.
go back to reference Lara LR, Hirscg G. Moving towards precision medicine in post-cardiac arrest care: using cerebrovascular autoregulation to individualize blood pressure. Resuscitation. 2022;175:48–9. Lara LR, Hirscg G. Moving towards precision medicine in post-cardiac arrest care: using cerebrovascular autoregulation to individualize blood pressure. Resuscitation. 2022;175:48–9.
84.
go back to reference Tas J, Beqiri E, van Kaam RC, Czosnyka M, Donnelly J, Haeren RH, van der Horst ICC, Hutchinson PJ, van Kuijk SMJ, Liberti AL, et al. Targeting autoregulation-guided cerebral perfusion pressure after traumatic brain injury (COGiTATE): a feasibility randomized controlled clinical trial. J Neurotrauma. 2021;38(20):2790–800.PubMed Tas J, Beqiri E, van Kaam RC, Czosnyka M, Donnelly J, Haeren RH, van der Horst ICC, Hutchinson PJ, van Kuijk SMJ, Liberti AL, et al. Targeting autoregulation-guided cerebral perfusion pressure after traumatic brain injury (COGiTATE): a feasibility randomized controlled clinical trial. J Neurotrauma. 2021;38(20):2790–800.PubMed
85.
go back to reference Topjian AA, French B, Sutton RM, Conlon T, Nadkarni VM, Moler FW, Dean JM, Berg RA. Early postresuscitation hypotension is associated with increased mortality following pediatric cardiac arrest. Crit Care Med. 2014;42(6):1518–23.PubMedPubMedCentral Topjian AA, French B, Sutton RM, Conlon T, Nadkarni VM, Moler FW, Dean JM, Berg RA. Early postresuscitation hypotension is associated with increased mortality following pediatric cardiac arrest. Crit Care Med. 2014;42(6):1518–23.PubMedPubMedCentral
86.
go back to reference Trzeciak S, Jones AE, Kilgannon JH, Milcarek B, Hunter K, Shapiro NI, Hollenberg SM, Dellinger P, Parrillo JE. Significance of arterial hypotension after resuscitation from cardiac arrest. Crit Care Med. 2009;37(11):2895–903 (quiz 2904).PubMed Trzeciak S, Jones AE, Kilgannon JH, Milcarek B, Hunter K, Shapiro NI, Hollenberg SM, Dellinger P, Parrillo JE. Significance of arterial hypotension after resuscitation from cardiac arrest. Crit Care Med. 2009;37(11):2895–903 (quiz 2904).PubMed
87.
go back to reference Kilgannon JH, Roberts BW, Reihl LR, Chansky ME, Jones AE, Dellinger RP, Parrillo JE, Trzeciak S. Early arterial hypotension is common in the post-cardiac arrest syndrome and associated with increased in-hospital mortality. Resuscitation. 2008;79(3):410–6.PubMedPubMedCentral Kilgannon JH, Roberts BW, Reihl LR, Chansky ME, Jones AE, Dellinger RP, Parrillo JE, Trzeciak S. Early arterial hypotension is common in the post-cardiac arrest syndrome and associated with increased in-hospital mortality. Resuscitation. 2008;79(3):410–6.PubMedPubMedCentral
88.
go back to reference Topjian AA, Telford R, Holubkov R, Nadkarni VM, Berg RA, Dean JM, Moler FW. Therapeutic hypothermia after pediatric cardiac arrest trial I: association of early postresuscitation hypotension with survival to discharge after targeted temperature management for pediatric out-of-hospital cardiac arrest: secondary analysis of a randomized clinical trial. JAMA Pediatr. 2018;172(2):143–53.PubMedPubMedCentral Topjian AA, Telford R, Holubkov R, Nadkarni VM, Berg RA, Dean JM, Moler FW. Therapeutic hypothermia after pediatric cardiac arrest trial I: association of early postresuscitation hypotension with survival to discharge after targeted temperature management for pediatric out-of-hospital cardiac arrest: secondary analysis of a randomized clinical trial. JAMA Pediatr. 2018;172(2):143–53.PubMedPubMedCentral
89.
go back to reference Lin YR, Li CJ, Wu TK, Chang YJ, Lai SC, Liu TA, Hsiao MH, Chou CC, Chang CF. Post-resuscitative clinical features in the first hour after achieving sustained ROSC predict the duration of survival in children with non-traumatic out-of-hospital cardiac arrest. Resuscitation. 2010;81(4):410–7.PubMed Lin YR, Li CJ, Wu TK, Chang YJ, Lai SC, Liu TA, Hsiao MH, Chou CC, Chang CF. Post-resuscitative clinical features in the first hour after achieving sustained ROSC predict the duration of survival in children with non-traumatic out-of-hospital cardiac arrest. Resuscitation. 2010;81(4):410–7.PubMed
90.
go back to reference Bhate TD, McDonald B, Sekhon MS, Griesdale DE. Association between blood pressure and outcomes in patients after cardiac arrest: a systematic review. Resuscitation. 2015;97:1–6.PubMed Bhate TD, McDonald B, Sekhon MS, Griesdale DE. Association between blood pressure and outcomes in patients after cardiac arrest: a systematic review. Resuscitation. 2015;97:1–6.PubMed
91.
go back to reference Jakkula P, Pettila V, Skrifvars MB, Hastbacka J, Loisa P, Tiainen M, Wilkman E, Toppila J, Koskue T, Bendel S, et al. Targeting low-normal or high-normal mean arterial pressure after cardiac arrest and resuscitation: a randomised pilot trial. Intensive Care Med. 2018;44(12):2091–101.PubMedPubMedCentral Jakkula P, Pettila V, Skrifvars MB, Hastbacka J, Loisa P, Tiainen M, Wilkman E, Toppila J, Koskue T, Bendel S, et al. Targeting low-normal or high-normal mean arterial pressure after cardiac arrest and resuscitation: a randomised pilot trial. Intensive Care Med. 2018;44(12):2091–101.PubMedPubMedCentral
92.
go back to reference Ameloot K, De Deyne C, Eertmans W, Ferdinande B, Dupont M, Palmers PJ, Petit T, Nuyens P, Maeremans J, Vundelinckx J, et al. Early goal-directed haemodynamic optimization of cerebral oxygenation in comatose survivors after cardiac arrest: the Neuroprotect post-cardiac arrest trial. Eur Heart J. 2019;40(22):1804–14.PubMed Ameloot K, De Deyne C, Eertmans W, Ferdinande B, Dupont M, Palmers PJ, Petit T, Nuyens P, Maeremans J, Vundelinckx J, et al. Early goal-directed haemodynamic optimization of cerebral oxygenation in comatose survivors after cardiac arrest: the Neuroprotect post-cardiac arrest trial. Eur Heart J. 2019;40(22):1804–14.PubMed
93.
go back to reference Kety SS. Circulation and metabolism of the human brain in health and disease. Am J Med. 1950;8(2):205–17.PubMed Kety SS. Circulation and metabolism of the human brain in health and disease. Am J Med. 1950;8(2):205–17.PubMed
94.
go back to reference Becker LB. New concepts in reactive oxygen species and cardiovascular reperfusion physiology. Cardiovasc Res. 2004;61(3):461–70.PubMed Becker LB. New concepts in reactive oxygen species and cardiovascular reperfusion physiology. Cardiovasc Res. 2004;61(3):461–70.PubMed
95.
go back to reference Manole MD, Kochanek PM, Fink EL, Clark RS. Postcardiac arrest syndrome: focus on the brain. Curr Opin Pediatr. 2009;21(6):745–50.PubMedPubMedCentral Manole MD, Kochanek PM, Fink EL, Clark RS. Postcardiac arrest syndrome: focus on the brain. Curr Opin Pediatr. 2009;21(6):745–50.PubMedPubMedCentral
96.
go back to reference Sekhon MS, Ainslie PN, Menon DK, Thiara SS, Cardim D, Gupta AK, Hoiland RL, Gooderham P, Griesdale DE. Brain hypoxia secondary to diffusion limitation in hypoxic ischemic brain injury postcardiac arrest. Crit Care Med. 2020;48(3):378–84.PubMed Sekhon MS, Ainslie PN, Menon DK, Thiara SS, Cardim D, Gupta AK, Hoiland RL, Gooderham P, Griesdale DE. Brain hypoxia secondary to diffusion limitation in hypoxic ischemic brain injury postcardiac arrest. Crit Care Med. 2020;48(3):378–84.PubMed
97.
go back to reference Figaji AA, Zwane E, Thompson C, Fieggen AG, Argent AC, Le Roux PD, Peter JC. Brain tissue oxygen tension monitoring in pediatric severe traumatic brain injury. Part 2: relationship with clinical, physiological, and treatment factors. Childs Nerv Syst. 2009;25(10):1335–43.PubMed Figaji AA, Zwane E, Thompson C, Fieggen AG, Argent AC, Le Roux PD, Peter JC. Brain tissue oxygen tension monitoring in pediatric severe traumatic brain injury. Part 2: relationship with clinical, physiological, and treatment factors. Childs Nerv Syst. 2009;25(10):1335–43.PubMed
98.
go back to reference Young PJ, Bailey M, Bellomo R, Bernard S, Bray J, Jakkula P, Kuisma M, Mackle D, Martin D, Nolan JP, et al. Conservative or liberal oxygen therapy in adults after cardiac arrest: an individual-level patient data meta-analysis of randomised controlled trials. Resuscitation. 2020;157:15–22.PubMed Young PJ, Bailey M, Bellomo R, Bernard S, Bray J, Jakkula P, Kuisma M, Mackle D, Martin D, Nolan JP, et al. Conservative or liberal oxygen therapy in adults after cardiac arrest: an individual-level patient data meta-analysis of randomised controlled trials. Resuscitation. 2020;157:15–22.PubMed
99.
go back to reference Bennett KS, Clark AE, Meert KL, Topjian AA, Schleien CL, Shaffner DH, Dean JM, Moler FW. Pediatric emergency care medicine applied research N: Early oxygenation and ventilation measurements after pediatric cardiac arrest: lack of association with outcome. Crit Care Med. 2013;41(6):1534–42.PubMedPubMedCentral Bennett KS, Clark AE, Meert KL, Topjian AA, Schleien CL, Shaffner DH, Dean JM, Moler FW. Pediatric emergency care medicine applied research N: Early oxygenation and ventilation measurements after pediatric cardiac arrest: lack of association with outcome. Crit Care Med. 2013;41(6):1534–42.PubMedPubMedCentral
100.
go back to reference Del Castillo J, Lopez-Herce J, Matamoros M, Canadas S, Rodriguez-Calvo A, Cechetti C, Rodriguez-Nunez A, Alvarez AC. Iberoamerican pediatric cardiac arrest study network R: hyperoxia, hypocapnia and hypercapnia as outcome factors after cardiac arrest in children. Resuscitation. 2012;83(12):1456–61.PubMed Del Castillo J, Lopez-Herce J, Matamoros M, Canadas S, Rodriguez-Calvo A, Cechetti C, Rodriguez-Nunez A, Alvarez AC. Iberoamerican pediatric cardiac arrest study network R: hyperoxia, hypocapnia and hypercapnia as outcome factors after cardiac arrest in children. Resuscitation. 2012;83(12):1456–61.PubMed
101.
go back to reference Guerra-Wallace MM, Casey FL 3rd, Bell MJ, Fink EL, Hickey RW. Hyperoxia and hypoxia in children resuscitated from cardiac arrest. Pediatr Crit Care Med. 2013;14(3):e143-148.PubMedPubMedCentral Guerra-Wallace MM, Casey FL 3rd, Bell MJ, Fink EL, Hickey RW. Hyperoxia and hypoxia in children resuscitated from cardiac arrest. Pediatr Crit Care Med. 2013;14(3):e143-148.PubMedPubMedCentral
102.
go back to reference Jakkula P, Reinikainen M, Hastbacka J, Loisa P, Tiainen M, Pettila V, Toppila J, Lahde M, Backlund M, Okkonen M, et al. Targeting two different levels of both arterial carbon dioxide and arterial oxygen after cardiac arrest and resuscitation: a randomised pilot trial. Intensive Care Med. 2018;44(12):2112–21.PubMedPubMedCentral Jakkula P, Reinikainen M, Hastbacka J, Loisa P, Tiainen M, Pettila V, Toppila J, Lahde M, Backlund M, Okkonen M, et al. Targeting two different levels of both arterial carbon dioxide and arterial oxygen after cardiac arrest and resuscitation: a randomised pilot trial. Intensive Care Med. 2018;44(12):2112–21.PubMedPubMedCentral
103.
go back to reference Investigators I-R, the A, New Zealand Intensive Care Society Clinical Trials G, Mackle D, Bellomo R, Bailey M, Beasley R, Deane A, Eastwood G, Finfer S, et al. Conservative oxygen therapy during mechanical ventilation in the ICU. N Engl J Med. 2020;382(11):989–98. Investigators I-R, the A, New Zealand Intensive Care Society Clinical Trials G, Mackle D, Bellomo R, Bailey M, Beasley R, Deane A, Eastwood G, Finfer S, et al. Conservative oxygen therapy during mechanical ventilation in the ICU. N Engl J Med. 2020;382(11):989–98.
104.
go back to reference Eastwood GM, Schneider AG, Suzuki S, Peck L, Young H, Tanaka A, Martensson J, Warrillow S, McGuinness S, Parke R, et al. Targeted therapeutic mild hypercapnia after cardiac arrest: a phase II multi-centre randomised controlled trial (the CCC trial). Resuscitation. 2016;104:83–90.PubMed Eastwood GM, Schneider AG, Suzuki S, Peck L, Young H, Tanaka A, Martensson J, Warrillow S, McGuinness S, Parke R, et al. Targeted therapeutic mild hypercapnia after cardiac arrest: a phase II multi-centre randomised controlled trial (the CCC trial). Resuscitation. 2016;104:83–90.PubMed
105.
go back to reference Wihersaari L, Ashton NJ, Reinikainen M, Jakkula P, Pettila V, Hastbacka J, Tiainen M, Loisa P, Friberg H, Cronberg T, et al. Neurofilament light as an outcome predictor after cardiac arrest: a post hoc analysis of the COMACARE trial. Intensive Care Med. 2021;47(1):39–48.PubMed Wihersaari L, Ashton NJ, Reinikainen M, Jakkula P, Pettila V, Hastbacka J, Tiainen M, Loisa P, Friberg H, Cronberg T, et al. Neurofilament light as an outcome predictor after cardiac arrest: a post hoc analysis of the COMACARE trial. Intensive Care Med. 2021;47(1):39–48.PubMed
106.
go back to reference Albaeni A, Eid SM, Akinyele B, Kurup LN, Vaidya D, Chandra-Strobos N. The association between post resuscitation hemoglobin level and survival with good neurological outcome following out of hospital cardiac arrest. Resuscitation. 2016;99:7–12.PubMed Albaeni A, Eid SM, Akinyele B, Kurup LN, Vaidya D, Chandra-Strobos N. The association between post resuscitation hemoglobin level and survival with good neurological outcome following out of hospital cardiac arrest. Resuscitation. 2016;99:7–12.PubMed
107.
go back to reference Jakkula P, Hastbacka J, Reinikainen M, Pettila V, Loisa P, Tiainen M, Wilkman E, Bendel S, Birkelund T, Pulkkinen A, et al. Near-infrared spectroscopy after out-of-hospital cardiac arrest. Crit Care. 2019;23(1):171.PubMedPubMedCentral Jakkula P, Hastbacka J, Reinikainen M, Pettila V, Loisa P, Tiainen M, Wilkman E, Bendel S, Birkelund T, Pulkkinen A, et al. Near-infrared spectroscopy after out-of-hospital cardiac arrest. Crit Care. 2019;23(1):171.PubMedPubMedCentral
108.
go back to reference Ito N, Nishiyama K, Callaway CW, Orita T, Hayashida K, Arimoto H, Abe M, Endo T, Murai A, Ishikura K, et al. Noninvasive regional cerebral oxygen saturation for neurological prognostication of patients with out-of-hospital cardiac arrest: a prospective multicenter observational study. Resuscitation. 2014;85(6):778–84.PubMed Ito N, Nishiyama K, Callaway CW, Orita T, Hayashida K, Arimoto H, Abe M, Endo T, Murai A, Ishikura K, et al. Noninvasive regional cerebral oxygen saturation for neurological prognostication of patients with out-of-hospital cardiac arrest: a prospective multicenter observational study. Resuscitation. 2014;85(6):778–84.PubMed
109.
go back to reference Nishiyama K, Ito N, Orita T, Hayashida K, Arimoto H, Beppu S, Abe M, Unoki T, Endo T, Murai A, et al. Regional cerebral oxygen saturation monitoring for predicting interventional outcomes in patients following out-of-hospital cardiac arrest of presumed cardiac cause: a prospective, observational, multicentre study. Resuscitation. 2015;96:135–41.PubMed Nishiyama K, Ito N, Orita T, Hayashida K, Arimoto H, Beppu S, Abe M, Unoki T, Endo T, Murai A, et al. Regional cerebral oxygen saturation monitoring for predicting interventional outcomes in patients following out-of-hospital cardiac arrest of presumed cardiac cause: a prospective, observational, multicentre study. Resuscitation. 2015;96:135–41.PubMed
110.
go back to reference Cournoyer A, Iseppon M, Chauny JM, Denault A, Cossette S, Notebaert E. Near-infrared spectroscopy monitoring during cardiac arrest: a systematic review and meta-analysis. Acad Emerg Med. 2016;23(8):851–62.PubMed Cournoyer A, Iseppon M, Chauny JM, Denault A, Cossette S, Notebaert E. Near-infrared spectroscopy monitoring during cardiac arrest: a systematic review and meta-analysis. Acad Emerg Med. 2016;23(8):851–62.PubMed
111.
go back to reference Bougle A, Daviaud F, Bougouin W, Rodrigues A, Geri G, Morichau-Beauchant T, Lamhaut L, Dumas F, Cariou A. Determinants and significance of cerebral oximetry after cardiac arrest: a prospective cohort study. Resuscitation. 2016;99:1–6.PubMed Bougle A, Daviaud F, Bougouin W, Rodrigues A, Geri G, Morichau-Beauchant T, Lamhaut L, Dumas F, Cariou A. Determinants and significance of cerebral oximetry after cardiac arrest: a prospective cohort study. Resuscitation. 2016;99:1–6.PubMed
112.
go back to reference Sakurai A, Ihara S, Tagami R, Yamaguchi J, Sugita A, Kuwana T, Sawada N, Hori S, Taniguch T, Kinoshita K. Parameters influencing brain oxygen measurement by regional oxygen saturation in postcardiac arrest patients with targeted temperature management. Ther Hypothermia Temp Manag. 2020;10(1):71–5.PubMedPubMedCentral Sakurai A, Ihara S, Tagami R, Yamaguchi J, Sugita A, Kuwana T, Sawada N, Hori S, Taniguch T, Kinoshita K. Parameters influencing brain oxygen measurement by regional oxygen saturation in postcardiac arrest patients with targeted temperature management. Ther Hypothermia Temp Manag. 2020;10(1):71–5.PubMedPubMedCentral
113.
go back to reference Saritas A, Cinleti BA, Zincircioglu C, Uzun U, Kose I, Senoglu N. Effect of regional cerebral oximetry to estimate neurologic prognostic outcomes in patients administered targeted temperature management. Am J Emerg Med. 2018;36(12):2236–41.PubMed Saritas A, Cinleti BA, Zincircioglu C, Uzun U, Kose I, Senoglu N. Effect of regional cerebral oximetry to estimate neurologic prognostic outcomes in patients administered targeted temperature management. Am J Emerg Med. 2018;36(12):2236–41.PubMed
114.
go back to reference Nakatani Y, Nakayama T, Nishiyama K, Takahashi Y. Effect of target temperature management at 32–34 degrees C in cardiac arrest patients considering assessment by regional cerebral oxygen saturation: a multicenter retrospective cohort study. Resuscitation. 2018;126:185–90.PubMed Nakatani Y, Nakayama T, Nishiyama K, Takahashi Y. Effect of target temperature management at 32–34 degrees C in cardiac arrest patients considering assessment by regional cerebral oxygen saturation: a multicenter retrospective cohort study. Resuscitation. 2018;126:185–90.PubMed
115.
go back to reference Schnaubelt S, Sulzgruber P, Menger J, Skhirtladze-Dworschak K, Sterz F, Dworschak M. Regional cerebral oxygen saturation during cardiopulmonary resuscitation as a predictor of return of spontaneous circulation and favourable neurological outcome—a review of the current literature. Resuscitation. 2018;125:39–47.PubMed Schnaubelt S, Sulzgruber P, Menger J, Skhirtladze-Dworschak K, Sterz F, Dworschak M. Regional cerebral oxygen saturation during cardiopulmonary resuscitation as a predictor of return of spontaneous circulation and favourable neurological outcome—a review of the current literature. Resuscitation. 2018;125:39–47.PubMed
116.
go back to reference Lybeck A, Cronberg T, Aneman A, Hassager C, Horn J, Hovdenes J, Kjaergaard J, Kuiper M, Wanscher M, Stammet P, et al. Time to awakening after cardiac arrest and the association with target temperature management. Resuscitation. 2018;126:166–71.PubMed Lybeck A, Cronberg T, Aneman A, Hassager C, Horn J, Hovdenes J, Kjaergaard J, Kuiper M, Wanscher M, Stammet P, et al. Time to awakening after cardiac arrest and the association with target temperature management. Resuscitation. 2018;126:166–71.PubMed
117.
go back to reference Samaniego EA, Mlynash M, Caulfield AF, Eyngorn I, Wijman CA. Sedation confounds outcome prediction in cardiac arrest survivors treated with hypothermia. Neurocrit Care. 2011;15(1):113–9.PubMedPubMedCentral Samaniego EA, Mlynash M, Caulfield AF, Eyngorn I, Wijman CA. Sedation confounds outcome prediction in cardiac arrest survivors treated with hypothermia. Neurocrit Care. 2011;15(1):113–9.PubMedPubMedCentral
118.
go back to reference Paul M, Bougouin W, Geri G, Dumas F, Champigneulle B, Legriel S, Charpentier J, Mira JP, Sandroni C, Cariou A. Delayed awakening after cardiac arrest: prevalence and risk factors in the Parisian registry. Intensive Care Med. 2016;42(7):1128–36.PubMed Paul M, Bougouin W, Geri G, Dumas F, Champigneulle B, Legriel S, Charpentier J, Mira JP, Sandroni C, Cariou A. Delayed awakening after cardiac arrest: prevalence and risk factors in the Parisian registry. Intensive Care Med. 2016;42(7):1128–36.PubMed
119.
go back to reference Rey A, Rossetti AO, Miroz JP, Eckert P, Oddo M. Late awakening in survivors of postanoxic coma: early neurophysiologic predictors and association with ICU and long-term neurologic recovery. Crit Care Med. 2019;47(1):85–92.PubMed Rey A, Rossetti AO, Miroz JP, Eckert P, Oddo M. Late awakening in survivors of postanoxic coma: early neurophysiologic predictors and association with ICU and long-term neurologic recovery. Crit Care Med. 2019;47(1):85–92.PubMed
120.
go back to reference Moler FW, Donaldson AE, Meert K, Brilli RJ, Nadkarni V, Shaffner DH, Schleien CL, Clark RS, Dalton HJ, Statler K, et al. Multicenter cohort study of out-of-hospital pediatric cardiac arrest. Crit Care Med. 2011;39(1):141–9.PubMedPubMedCentral Moler FW, Donaldson AE, Meert K, Brilli RJ, Nadkarni V, Shaffner DH, Schleien CL, Clark RS, Dalton HJ, Statler K, et al. Multicenter cohort study of out-of-hospital pediatric cardiac arrest. Crit Care Med. 2011;39(1):141–9.PubMedPubMedCentral
121.
go back to reference Meert KL, Donaldson A, Nadkarni V, Tieves KS, Schleien CL, Brilli RJ, Clark RS, Shaffner DH, Levy F, Statler K, et al. Multicenter cohort study of in-hospital pediatric cardiac arrest. Pediatr Crit Care Med. 2009;10(5):544–53.PubMedPubMedCentral Meert KL, Donaldson A, Nadkarni V, Tieves KS, Schleien CL, Brilli RJ, Clark RS, Shaffner DH, Levy F, Statler K, et al. Multicenter cohort study of in-hospital pediatric cardiac arrest. Pediatr Crit Care Med. 2009;10(5):544–53.PubMedPubMedCentral
122.
go back to reference Abend NS, Topjian AA, Kessler SK, Gutierrez-Colina AM, Berg RA, Nadkarni V, Dlugos DJ, Clancy RR, Ichord RN. Outcome prediction by motor and pupillary responses in children treated with therapeutic hypothermia after cardiac arrest. Pediatr Crit Care Med. 2012;13(1):32–8.PubMedPubMedCentral Abend NS, Topjian AA, Kessler SK, Gutierrez-Colina AM, Berg RA, Nadkarni V, Dlugos DJ, Clancy RR, Ichord RN. Outcome prediction by motor and pupillary responses in children treated with therapeutic hypothermia after cardiac arrest. Pediatr Crit Care Med. 2012;13(1):32–8.PubMedPubMedCentral
123.
go back to reference Brooks GA, Park JT. Clinical and electroencephalographic correlates in pediatric cardiac arrest: experience at a tertiary care center. Neuropediatrics. 2018;49(5):324–9.PubMed Brooks GA, Park JT. Clinical and electroencephalographic correlates in pediatric cardiac arrest: experience at a tertiary care center. Neuropediatrics. 2018;49(5):324–9.PubMed
124.
go back to reference Carter BG, Butt W. A prospective study of outcome predictors after severe brain injury in children. Intensive Care Med. 2005;31(6):840–5.PubMed Carter BG, Butt W. A prospective study of outcome predictors after severe brain injury in children. Intensive Care Med. 2005;31(6):840–5.PubMed
125.
go back to reference Mandel R, Martinot A, Delepoulle F, Lamblin MD, Laureau E, Vallee L, Leclerc F. Prediction of outcome after hypoxic-ischemic encephalopathy: a prospective clinical and electrophysiologic study. J Pediatr. 2002;141(1):45–50.PubMed Mandel R, Martinot A, Delepoulle F, Lamblin MD, Laureau E, Vallee L, Leclerc F. Prediction of outcome after hypoxic-ischemic encephalopathy: a prospective clinical and electrophysiologic study. J Pediatr. 2002;141(1):45–50.PubMed
126.
go back to reference Kramer AH. Status myoclonus: a nuanced predictor of poor outcome post cardiac arrest. Neurocrit Care. 2022;36(2):346–9.PubMed Kramer AH. Status myoclonus: a nuanced predictor of poor outcome post cardiac arrest. Neurocrit Care. 2022;36(2):346–9.PubMed
127.
go back to reference Panchal AR, Bartos JA, Cabanas JG, Donnino MW, Drennan IR, Hirsch KG, Kudenchuk PJ, Kurz MC, Lavonas EJ, Morley PT, et al. Part 3: adult basic and advanced life support: 2020 American Heart Association guidelines for cardiopulmonary resuscitation and emergency cardiovascular care. Circulation. 2020;142(16_suppl_2):S366–468.PubMed Panchal AR, Bartos JA, Cabanas JG, Donnino MW, Drennan IR, Hirsch KG, Kudenchuk PJ, Kurz MC, Lavonas EJ, Morley PT, et al. Part 3: adult basic and advanced life support: 2020 American Heart Association guidelines for cardiopulmonary resuscitation and emergency cardiovascular care. Circulation. 2020;142(16_suppl_2):S366–468.PubMed
128.
go back to reference Gray AT, Krejci ST, Larson MD. Neuromuscular blocking drugs do not alter the pupillary light reflex of anesthetized humans. Arch Neurol. 1997;54(5):579–84.PubMed Gray AT, Krejci ST, Larson MD. Neuromuscular blocking drugs do not alter the pupillary light reflex of anesthetized humans. Arch Neurol. 1997;54(5):579–84.PubMed
129.
go back to reference Brisson CD, Hsieh YT, Kim D, Jin AY, Andrew RD. Brainstem neurons survive the identical ischemic stress that kills higher neurons: insight to the persistent vegetative state. PLoS ONE. 2014;9(5):e96585.PubMedPubMedCentral Brisson CD, Hsieh YT, Kim D, Jin AY, Andrew RD. Brainstem neurons survive the identical ischemic stress that kills higher neurons: insight to the persistent vegetative state. PLoS ONE. 2014;9(5):e96585.PubMedPubMedCentral
130.
go back to reference Oddo M, Sandroni C, Citerio G, Miroz JP, Horn J, Rundgren M, Cariou A, Payen JF, Storm C, Stammet P, et al. Quantitative versus standard pupillary light reflex for early prognostication in comatose cardiac arrest patients: an international prospective multicenter double-blinded study. Intensive Care Med. 2018;44(12):2102–11.PubMedPubMedCentral Oddo M, Sandroni C, Citerio G, Miroz JP, Horn J, Rundgren M, Cariou A, Payen JF, Storm C, Stammet P, et al. Quantitative versus standard pupillary light reflex for early prognostication in comatose cardiac arrest patients: an international prospective multicenter double-blinded study. Intensive Care Med. 2018;44(12):2102–11.PubMedPubMedCentral
131.
go back to reference Wang CH, Wu CY, Liu CC, Hsu TC, Liu MA, Wu MC, Tsai MS, Chang WT, Huang CH, Lee CC, et al. Neuroprognostic accuracy of quantitative versus standard pupillary light reflex for adult postcardiac arrest patients: a systematic review and meta-analysis. Crit Care Med. 2021;49(10):1790–9.PubMed Wang CH, Wu CY, Liu CC, Hsu TC, Liu MA, Wu MC, Tsai MS, Chang WT, Huang CH, Lee CC, et al. Neuroprognostic accuracy of quantitative versus standard pupillary light reflex for adult postcardiac arrest patients: a systematic review and meta-analysis. Crit Care Med. 2021;49(10):1790–9.PubMed
132.
go back to reference Nolan JP, Sandroni C, Bottiger BW, Cariou A, Cronberg T, Friberg H, Genbrugge C, Haywood K, Lilja G, Moulaert VRM, et al. European resuscitation council and European society of intensive care medicine guidelines 2021: post-resuscitation care. Intensive Care Med. 2021;47(4):369–421.PubMedPubMedCentral Nolan JP, Sandroni C, Bottiger BW, Cariou A, Cronberg T, Friberg H, Genbrugge C, Haywood K, Lilja G, Moulaert VRM, et al. European resuscitation council and European society of intensive care medicine guidelines 2021: post-resuscitation care. Intensive Care Med. 2021;47(4):369–421.PubMedPubMedCentral
133.
go back to reference Tamura T, Namiki J, Sugawara Y, Sekine K, Yo K, Kanaya T, Yokobori S, Roberts R, Abe T, Yokota H, et al. Quantitative assessment of pupillary light reflex for early prediction of outcomes after out-of-hospital cardiac arrest: a multicentre prospective observational study. Resuscitation. 2018;131:108–13.PubMed Tamura T, Namiki J, Sugawara Y, Sekine K, Yo K, Kanaya T, Yokobori S, Roberts R, Abe T, Yokota H, et al. Quantitative assessment of pupillary light reflex for early prediction of outcomes after out-of-hospital cardiac arrest: a multicentre prospective observational study. Resuscitation. 2018;131:108–13.PubMed
134.
go back to reference Paramanathan S, Grejs AM, Soreide E, Duez CHV, Jeppesen AN, Reinertsen AJ, Strand K, Kirkegaard H. Quantitative pupillometry in comatose out-of-hospital cardiac arrest patients: a post-hoc analysis of the TTH48 trial. Acta Anaesthesiol Scand. 2022;66(7):880–6.PubMedPubMedCentral Paramanathan S, Grejs AM, Soreide E, Duez CHV, Jeppesen AN, Reinertsen AJ, Strand K, Kirkegaard H. Quantitative pupillometry in comatose out-of-hospital cardiac arrest patients: a post-hoc analysis of the TTH48 trial. Acta Anaesthesiol Scand. 2022;66(7):880–6.PubMedPubMedCentral
135.
go back to reference Du R, Meeker M, Bacchetti P, Larson MD, Holland MC, Manley GT. Evaluation of the portable infrared pupillometer. Neurosurgery. 2005;57(1):198–203 (discussion 198–203).PubMed Du R, Meeker M, Bacchetti P, Larson MD, Holland MC, Manley GT. Evaluation of the portable infrared pupillometer. Neurosurgery. 2005;57(1):198–203 (discussion 198–203).PubMed
136.
go back to reference Abend NS, Wiebe DJ, Xiao R, Massey SL, Fitzgerald M, Fung F, Topjian AA. EEG factors after pediatric cardiac arrest. J Clin Neurophysiol. 2018;35(3):251–5.PubMedPubMedCentral Abend NS, Wiebe DJ, Xiao R, Massey SL, Fitzgerald M, Fung F, Topjian AA. EEG factors after pediatric cardiac arrest. J Clin Neurophysiol. 2018;35(3):251–5.PubMedPubMedCentral
137.
go back to reference Abend NS, Xiao R, Kessler SK, Topjian AA. Stability of early EEG background patterns after pediatric cardiac arrest. J Clin Neurophysiol. 2018;35(3):246–50.PubMedPubMedCentral Abend NS, Xiao R, Kessler SK, Topjian AA. Stability of early EEG background patterns after pediatric cardiac arrest. J Clin Neurophysiol. 2018;35(3):246–50.PubMedPubMedCentral
138.
go back to reference Thomke F, Brand A, Weilemann SL. The temporal dynamics of postanoxic burst-suppression EEG. J Clin Neurophysiol. 2002;19(1):24–31.PubMed Thomke F, Brand A, Weilemann SL. The temporal dynamics of postanoxic burst-suppression EEG. J Clin Neurophysiol. 2002;19(1):24–31.PubMed
139.
go back to reference Backman S, Westhall E, Dragancea I, Friberg H, Rundgren M, Ullen S, Cronberg T. Electroencephalographic characteristics of status epilepticus after cardiac arrest. Clin Neurophysiol. 2017;128(4):681–8.PubMed Backman S, Westhall E, Dragancea I, Friberg H, Rundgren M, Ullen S, Cronberg T. Electroencephalographic characteristics of status epilepticus after cardiac arrest. Clin Neurophysiol. 2017;128(4):681–8.PubMed
140.
go back to reference Ostendorf AP, Hartman ME, Friess SH. Early electroencephalographic findings correlate with neurologic outcome in children following cardiac arrest. Pediatr Crit Care Med. 2016;17(7):667–76.PubMedPubMedCentral Ostendorf AP, Hartman ME, Friess SH. Early electroencephalographic findings correlate with neurologic outcome in children following cardiac arrest. Pediatr Crit Care Med. 2016;17(7):667–76.PubMedPubMedCentral
141.
go back to reference Topjian AA, Sanchez SM, Shults J, Berg RA, Dlugos DJ, Abend NS. Early electroencephalographic background features predict outcomes in children resuscitated from cardiac arrest. Pediatr Crit Care Med. 2016;17(6):547–57.PubMedPubMedCentral Topjian AA, Sanchez SM, Shults J, Berg RA, Dlugos DJ, Abend NS. Early electroencephalographic background features predict outcomes in children resuscitated from cardiac arrest. Pediatr Crit Care Med. 2016;17(6):547–57.PubMedPubMedCentral
142.
go back to reference Abend NS, Topjian A, Ichord R, Herman ST, Helfaer M, Donnelly M, Nadkarni V, Dlugos DJ, Clancy RR. Electroencephalographic monitoring during hypothermia after pediatric cardiac arrest. Neurology. 2009;72(22):1931–40.PubMedPubMedCentral Abend NS, Topjian A, Ichord R, Herman ST, Helfaer M, Donnelly M, Nadkarni V, Dlugos DJ, Clancy RR. Electroencephalographic monitoring during hypothermia after pediatric cardiac arrest. Neurology. 2009;72(22):1931–40.PubMedPubMedCentral
143.
go back to reference Kessler SK, Topjian AA, Gutierrez-Colina AM, Ichord RN, Donnelly M, Nadkarni VM, Berg RA, Dlugos DJ, Clancy RR, Abend NS. Short-term outcome prediction by electroencephalographic features in children treated with therapeutic hypothermia after cardiac arrest. Neurocrit Care. 2011;14(1):37–43.PubMedPubMedCentral Kessler SK, Topjian AA, Gutierrez-Colina AM, Ichord RN, Donnelly M, Nadkarni VM, Berg RA, Dlugos DJ, Clancy RR, Abend NS. Short-term outcome prediction by electroencephalographic features in children treated with therapeutic hypothermia after cardiac arrest. Neurocrit Care. 2011;14(1):37–43.PubMedPubMedCentral
144.
go back to reference Topjian AA, Gutierrez-Colina AM, Sanchez SM, Berg RA, Friess SH, Dlugos DJ, Abend NS. Electrographic status epilepticus is associated with mortality and worse short-term outcome in critically ill children. Crit Care Med. 2013;41(1):215–23.PubMed Topjian AA, Gutierrez-Colina AM, Sanchez SM, Berg RA, Friess SH, Dlugos DJ, Abend NS. Electrographic status epilepticus is associated with mortality and worse short-term outcome in critically ill children. Crit Care Med. 2013;41(1):215–23.PubMed
145.
go back to reference Nishisaki A, Sullivan J 3rd, Steger B, Bayer CR, Dlugos D, Lin R, Ichord R, Helfaer MA, Nadkarni V. Retrospective analysis of the prognostic value of electroencephalography patterns obtained in pediatric in-hospital cardiac arrest survivors during three years. Pediatr Crit Care Med. 2007;8(1):10–7.PubMed Nishisaki A, Sullivan J 3rd, Steger B, Bayer CR, Dlugos D, Lin R, Ichord R, Helfaer MA, Nadkarni V. Retrospective analysis of the prognostic value of electroencephalography patterns obtained in pediatric in-hospital cardiac arrest survivors during three years. Pediatr Crit Care Med. 2007;8(1):10–7.PubMed
146.
go back to reference Nenadovic V, Perez Velazquez JL, Hutchison JS. Phase synchronization in electroencephalographic recordings prognosticates outcome in paediatric coma. PLoS ONE. 2014;9(4):e94942.PubMedPubMedCentral Nenadovic V, Perez Velazquez JL, Hutchison JS. Phase synchronization in electroencephalographic recordings prognosticates outcome in paediatric coma. PLoS ONE. 2014;9(4):e94942.PubMedPubMedCentral
147.
go back to reference Ducharme-Crevier L, Press CA, Kurz JE, Mills MG, Goldstein JL, Wainwright MS. Early presence of sleep spindles on electroencephalography is associated with good outcome after pediatric cardiac arrest. Pediatr Crit Care Med. 2017;18(5):452–60.PubMed Ducharme-Crevier L, Press CA, Kurz JE, Mills MG, Goldstein JL, Wainwright MS. Early presence of sleep spindles on electroencephalography is associated with good outcome after pediatric cardiac arrest. Pediatr Crit Care Med. 2017;18(5):452–60.PubMed
148.
go back to reference Forgacs PB, Devinsky O, Schiff ND. Independent functional outcomes after prolonged coma following cardiac arrest: a mechanistic hypothesis. Ann Neurol. 2020;87(4):618–32.PubMedPubMedCentral Forgacs PB, Devinsky O, Schiff ND. Independent functional outcomes after prolonged coma following cardiac arrest: a mechanistic hypothesis. Ann Neurol. 2020;87(4):618–32.PubMedPubMedCentral
149.
go back to reference Sekar K, Schiff ND, Labar D, Forgacs PB. Spectral content of electroencephalographic burst-suppression patterns may reflect neuronal recovery in comatose post-cardiac arrest patients. J Clin Neurophysiol. 2019;36(2):119–26.PubMedPubMedCentral Sekar K, Schiff ND, Labar D, Forgacs PB. Spectral content of electroencephalographic burst-suppression patterns may reflect neuronal recovery in comatose post-cardiac arrest patients. J Clin Neurophysiol. 2019;36(2):119–26.PubMedPubMedCentral
150.
go back to reference Ruijter BJ, Tjepkema-Cloostermans MC, Tromp SC, van den Bergh WM, Foudraine NA, Kornips FHM, Drost G, Scholten E, Bosch FH, Beishuizen A, et al. Early electroencephalography for outcome prediction of postanoxic coma: a prospective cohort study. Ann Neurol. 2019;86(2):203–14.PubMedPubMedCentral Ruijter BJ, Tjepkema-Cloostermans MC, Tromp SC, van den Bergh WM, Foudraine NA, Kornips FHM, Drost G, Scholten E, Bosch FH, Beishuizen A, et al. Early electroencephalography for outcome prediction of postanoxic coma: a prospective cohort study. Ann Neurol. 2019;86(2):203–14.PubMedPubMedCentral
151.
go back to reference Elmer J, Rittenberger JC, Faro J, Molyneaux BJ, Popescu A, Callaway CW, Baldwin M. Pittsburgh post-cardiac arrest s: clinically distinct electroencephalographic phenotypes of early myoclonus after cardiac arrest. Ann Neurol. 2016;80(2):175–84.PubMedPubMedCentral Elmer J, Rittenberger JC, Faro J, Molyneaux BJ, Popescu A, Callaway CW, Baldwin M. Pittsburgh post-cardiac arrest s: clinically distinct electroencephalographic phenotypes of early myoclonus after cardiac arrest. Ann Neurol. 2016;80(2):175–84.PubMedPubMedCentral
152.
go back to reference Ruijter BJ, Keijzer HM, Tjepkema-Cloostermans MC, Blans MJ, Beishuizen A, Tromp SC, Scholten E, Horn J, van Rootselaar AF, Admiraal MM, et al. Treating rhythmic and periodic EEG patterns in comatose survivors of cardiac arrest. N Engl J Med. 2022;386(8):724–34.PubMed Ruijter BJ, Keijzer HM, Tjepkema-Cloostermans MC, Blans MJ, Beishuizen A, Tromp SC, Scholten E, Horn J, van Rootselaar AF, Admiraal MM, et al. Treating rhythmic and periodic EEG patterns in comatose survivors of cardiac arrest. N Engl J Med. 2022;386(8):724–34.PubMed
153.
go back to reference Abend NS, Gutierrez-Colina A, Zhao H, Guo R, Marsh E, Clancy RR, Dlugos DJ. Interobserver reproducibility of electroencephalogram interpretation in critically ill children. J Clin Neurophysiol. 2011;28(1):15–9.PubMedPubMedCentral Abend NS, Gutierrez-Colina A, Zhao H, Guo R, Marsh E, Clancy RR, Dlugos DJ. Interobserver reproducibility of electroencephalogram interpretation in critically ill children. J Clin Neurophysiol. 2011;28(1):15–9.PubMedPubMedCentral
154.
go back to reference Herman ST, Abend NS, Bleck TP, Chapman KE, Drislane FW, Emerson RG, Gerard EE, Hahn CD, Husain AM, Kaplan PW, et al. Consensus statement on continuous EEG in critically ill adults and children, part II: personnel, technical specifications, and clinical practice. J Clin Neurophysiol. 2015;32(2):96–108.PubMedPubMedCentral Herman ST, Abend NS, Bleck TP, Chapman KE, Drislane FW, Emerson RG, Gerard EE, Hahn CD, Husain AM, Kaplan PW, et al. Consensus statement on continuous EEG in critically ill adults and children, part II: personnel, technical specifications, and clinical practice. J Clin Neurophysiol. 2015;32(2):96–108.PubMedPubMedCentral
155.
go back to reference Beca J, Cox PN, Taylor MJ, Bohn D, Butt W, Logan WJ, Rutka JT, Barker G. Somatosensory evoked potentials for prediction of outcome in acute severe brain injury. J Pediatr. 1995;126(1):44–9.PubMed Beca J, Cox PN, Taylor MJ, Bohn D, Butt W, Logan WJ, Rutka JT, Barker G. Somatosensory evoked potentials for prediction of outcome in acute severe brain injury. J Pediatr. 1995;126(1):44–9.PubMed
156.
go back to reference Lachance B, Wang Z, Badjatia N, Jia X. Somatosensory evoked potentials and neuroprognostication after cardiac arrest. Neurocrit Care. 2020;32(3):847–57.PubMed Lachance B, Wang Z, Badjatia N, Jia X. Somatosensory evoked potentials and neuroprognostication after cardiac arrest. Neurocrit Care. 2020;32(3):847–57.PubMed
157.
go back to reference Ong ME, Stiell I, Osmond MH, Nesbitt L, Gerein R, Campbell S, McLellan B, Group OS. Etiology of pediatric out-of-hospital cardiac arrest by coroner’s diagnosis. Resuscitation. 2006;68(3):335–42.PubMed Ong ME, Stiell I, Osmond MH, Nesbitt L, Gerein R, Campbell S, McLellan B, Group OS. Etiology of pediatric out-of-hospital cardiac arrest by coroner’s diagnosis. Resuscitation. 2006;68(3):335–42.PubMed
158.
go back to reference Extracorporeal Life Support: The ELSO Red Book, 5th edn. Ann Arbor, Michigan: ELSO (2017) Extracorporeal Life Support: The ELSO Red Book, 5th edn. Ann Arbor, Michigan: ELSO (2017)
159.
go back to reference Guerguerian AM, Sano M, Todd M, Honjo O, Alexander P, Raman L. Pediatric Extracorporeal cardiopulmonary resuscitation ELSO guidelines. ASAIO J. 2021;67(3):229–37.PubMed Guerguerian AM, Sano M, Todd M, Honjo O, Alexander P, Raman L. Pediatric Extracorporeal cardiopulmonary resuscitation ELSO guidelines. ASAIO J. 2021;67(3):229–37.PubMed
160.
go back to reference Yang D, Ha SG, Ryoo E, Choi JY, Kim HJ. Multimodal assessment using early brain CT and blood pH improve prediction of neurologic outcomes after pediatric cardiac arrest. Resuscitation. 2019;137:7–13.PubMed Yang D, Ha SG, Ryoo E, Choi JY, Kim HJ. Multimodal assessment using early brain CT and blood pH improve prediction of neurologic outcomes after pediatric cardiac arrest. Resuscitation. 2019;137:7–13.PubMed
161.
go back to reference Starling RM, Shekdar K, Licht D, Nadkarni VM, Berg RA, Topjian AA. Early head CT findings are associated with outcomes after pediatric out-of-hospital cardiac arrest. Pediatr Crit Care Med. 2015;16(6):542–8.PubMedPubMedCentral Starling RM, Shekdar K, Licht D, Nadkarni VM, Berg RA, Topjian AA. Early head CT findings are associated with outcomes after pediatric out-of-hospital cardiac arrest. Pediatr Crit Care Med. 2015;16(6):542–8.PubMedPubMedCentral
162.
go back to reference Schick A, Prekker ME, Kempainen RR, Mulder M, Moore J, Evans D, Hall J, Rodin H, Larson J, Caraganis A. Association of hypoxic ischemic brain injury on early CT after out of hospital cardiac arrest with neurologic outcome. Am J Emerg Med. 2022;54:257–62.PubMed Schick A, Prekker ME, Kempainen RR, Mulder M, Moore J, Evans D, Hall J, Rodin H, Larson J, Caraganis A. Association of hypoxic ischemic brain injury on early CT after out of hospital cardiac arrest with neurologic outcome. Am J Emerg Med. 2022;54:257–62.PubMed
163.
go back to reference Reynolds AS, Matthews E, Magid-Bernstein J, Rodriguez A, Park S, Claassen J, Agarwal S. Use of early head CT following out-of-hospital cardiopulmonary arrest. Resuscitation. 2017;113:124–7.PubMedPubMedCentral Reynolds AS, Matthews E, Magid-Bernstein J, Rodriguez A, Park S, Claassen J, Agarwal S. Use of early head CT following out-of-hospital cardiopulmonary arrest. Resuscitation. 2017;113:124–7.PubMedPubMedCentral
164.
go back to reference Choi SP, Park HK, Park KN, Kim YM, Ahn KJ, Choi KH, Lee WJ, Jeong SK. The density ratio of grey to white matter on computed tomography as an early predictor of vegetative state or death after cardiac arrest. Emerg Med J. 2008;25(10):666–9.PubMed Choi SP, Park HK, Park KN, Kim YM, Ahn KJ, Choi KH, Lee WJ, Jeong SK. The density ratio of grey to white matter on computed tomography as an early predictor of vegetative state or death after cardiac arrest. Emerg Med J. 2008;25(10):666–9.PubMed
165.
go back to reference Youn CS, Callaway CW, Rittenberger JC. Post Cardiac Arrest S: Combination of initial neurologic examination, quantitative brain imaging and electroencephalography to predict outcome after cardiac arrest. Resuscitation. 2017;110:120–5.PubMed Youn CS, Callaway CW, Rittenberger JC. Post Cardiac Arrest S: Combination of initial neurologic examination, quantitative brain imaging and electroencephalography to predict outcome after cardiac arrest. Resuscitation. 2017;110:120–5.PubMed
166.
go back to reference Ebisu T, Naruse S, Horikawa Y, Ueda S, Tanaka C, Uto M, Umeda M, Higuchi T. Discrimination between different types of white matter edema with diffusion-weighted MR imaging. J Magn Reson Imag. 1993;3(6):863–8. Ebisu T, Naruse S, Horikawa Y, Ueda S, Tanaka C, Uto M, Umeda M, Higuchi T. Discrimination between different types of white matter edema with diffusion-weighted MR imaging. J Magn Reson Imag. 1993;3(6):863–8.
167.
go back to reference Schaefer PW, Grant PE, Gonzalez RG. Diffusion-weighted MR imaging of the brain. Radiology. 2000;217(2):331–45.PubMed Schaefer PW, Grant PE, Gonzalez RG. Diffusion-weighted MR imaging of the brain. Radiology. 2000;217(2):331–45.PubMed
168.
go back to reference Mlynash M, Campbell DM, Leproust EM, Fischbein NJ, Bammer R, Eyngorn I, Hsia AW, Moseley M, Wijman CA. Temporal and spatial profile of brain diffusion-weighted MRI after cardiac arrest. Stroke. 2010;41(8):1665–72.PubMedPubMedCentral Mlynash M, Campbell DM, Leproust EM, Fischbein NJ, Bammer R, Eyngorn I, Hsia AW, Moseley M, Wijman CA. Temporal and spatial profile of brain diffusion-weighted MRI after cardiac arrest. Stroke. 2010;41(8):1665–72.PubMedPubMedCentral
169.
go back to reference Barkovich AJ, Miller SP, Bartha A, Newton N, Hamrick SE, Mukherjee P, Glenn OA, Xu D, Partridge JC, Ferriero DM, et al. MR imaging, MR spectroscopy, and diffusion tensor imaging of sequential studies in neonates with encephalopathy. AJNR Am J Neuroradiol. 2006;27(3):533–47.PubMedPubMedCentral Barkovich AJ, Miller SP, Bartha A, Newton N, Hamrick SE, Mukherjee P, Glenn OA, Xu D, Partridge JC, Ferriero DM, et al. MR imaging, MR spectroscopy, and diffusion tensor imaging of sequential studies in neonates with encephalopathy. AJNR Am J Neuroradiol. 2006;27(3):533–47.PubMedPubMedCentral
170.
go back to reference Greer D, Scripko P, Bartscher J, Sims J, Camargo E, Singhal A, Furie K. Serial MRI changes in comatose cardiac arrest patients. Neurocrit Care. 2011;14(1):61–7.PubMed Greer D, Scripko P, Bartscher J, Sims J, Camargo E, Singhal A, Furie K. Serial MRI changes in comatose cardiac arrest patients. Neurocrit Care. 2011;14(1):61–7.PubMed
171.
go back to reference Oualha M, Gatterre P, Boddaert N, Dupic L, De Saint BL, Hubert P, Lesage F, Desguerre I. Early diffusion-weighted magnetic resonance imaging in children after cardiac arrest may provide valuable prognostic information on clinical outcome. Intensive Care Med. 2013;39(7):1306–12.PubMed Oualha M, Gatterre P, Boddaert N, Dupic L, De Saint BL, Hubert P, Lesage F, Desguerre I. Early diffusion-weighted magnetic resonance imaging in children after cardiac arrest may provide valuable prognostic information on clinical outcome. Intensive Care Med. 2013;39(7):1306–12.PubMed
172.
go back to reference Dubowitz DJ, Bluml S, Arcinue E, Dietrich RB. MR of hypoxic encephalopathy in children after near drowning: correlation with quantitative proton MR spectroscopy and clinical outcome. AJNR Am J Neuroradiol. 1998;19(9):1617–27.PubMedPubMedCentral Dubowitz DJ, Bluml S, Arcinue E, Dietrich RB. MR of hypoxic encephalopathy in children after near drowning: correlation with quantitative proton MR spectroscopy and clinical outcome. AJNR Am J Neuroradiol. 1998;19(9):1617–27.PubMedPubMedCentral
173.
go back to reference Ashwal S, Holshouser BA, Tomasi LG, Shu S, Perkin RM, Nystrom GA, Hinshaw DB Jr. 1H-magnetic resonance spectroscopy-determined cerebral lactate and poor neurological outcomes in children with central nervous system disease. Ann Neurol. 1997;41(4):470–81.PubMed Ashwal S, Holshouser BA, Tomasi LG, Shu S, Perkin RM, Nystrom GA, Hinshaw DB Jr. 1H-magnetic resonance spectroscopy-determined cerebral lactate and poor neurological outcomes in children with central nervous system disease. Ann Neurol. 1997;41(4):470–81.PubMed
174.
go back to reference Kreis R, Arcinue E, Ernst T, Shonk TK, Flores R, Ross BD. Hypoxic encephalopathy after near-drowning studied by quantitative 1H-magnetic resonance spectroscopy. J Clin Invest. 1996;97(5):1142–54.PubMedPubMedCentral Kreis R, Arcinue E, Ernst T, Shonk TK, Flores R, Ross BD. Hypoxic encephalopathy after near-drowning studied by quantitative 1H-magnetic resonance spectroscopy. J Clin Invest. 1996;97(5):1142–54.PubMedPubMedCentral
175.
go back to reference Hahn DK, Geocadin RG, Greer DM. Quality of evidence in studies evaluating neuroimaging for neurologic prognostication in adult patients resuscitated from cardiac arrest. Resuscitation. 2014;85(2):165–72.PubMed Hahn DK, Geocadin RG, Greer DM. Quality of evidence in studies evaluating neuroimaging for neurologic prognostication in adult patients resuscitated from cardiac arrest. Resuscitation. 2014;85(2):165–72.PubMed
176.
go back to reference Nguyen PL, Alreshaid L, Poblete RA, Konye G, Marehbian J, Sung G. Targeted temperature management and multimodality monitoring of comatose patients after cardiac arrest. Front Neurol. 2018;9:768.PubMedPubMedCentral Nguyen PL, Alreshaid L, Poblete RA, Konye G, Marehbian J, Sung G. Targeted temperature management and multimodality monitoring of comatose patients after cardiac arrest. Front Neurol. 2018;9:768.PubMedPubMedCentral
177.
go back to reference Benson DW, Williams GR Jr, Spencer FC, Yates AJ. The use of hypothermia after cardiac arrest. Anesth Analg. 1959;38:423–8.PubMed Benson DW, Williams GR Jr, Spencer FC, Yates AJ. The use of hypothermia after cardiac arrest. Anesth Analg. 1959;38:423–8.PubMed
178.
go back to reference Olai H, Thorneus G, Watson H, Macleod M, Rhodes J, Friberg H, Nielsen N, Cronberg T, Deierborg T. Meta-analysis of targeted temperature management in animal models of cardiac arrest. Intensive Care Med Exp. 2020;8(1):3.PubMedPubMedCentral Olai H, Thorneus G, Watson H, Macleod M, Rhodes J, Friberg H, Nielsen N, Cronberg T, Deierborg T. Meta-analysis of targeted temperature management in animal models of cardiac arrest. Intensive Care Med Exp. 2020;8(1):3.PubMedPubMedCentral
179.
go back to reference Arrich J, Herkner H, Mullner D, Behringer W. Targeted temperature management after cardiac arrest. a systematic review and meta-analysis of animal studies. Resuscitation. 2021;162:47–55.PubMed Arrich J, Herkner H, Mullner D, Behringer W. Targeted temperature management after cardiac arrest. a systematic review and meta-analysis of animal studies. Resuscitation. 2021;162:47–55.PubMed
180.
go back to reference Gluckman PD, Wyatt JS, Azzopardi D, Ballard R, Edwards AD, Ferriero DM, Polin RA, Robertson CM, Thoresen M, Whitelaw A, et al. Selective head cooling with mild systemic hypothermia after neonatal encephalopathy: multicentre randomised trial. Lancet. 2005;365(9460):663–70.PubMed Gluckman PD, Wyatt JS, Azzopardi D, Ballard R, Edwards AD, Ferriero DM, Polin RA, Robertson CM, Thoresen M, Whitelaw A, et al. Selective head cooling with mild systemic hypothermia after neonatal encephalopathy: multicentre randomised trial. Lancet. 2005;365(9460):663–70.PubMed
181.
go back to reference Wyatt JS, Gluckman PD, Liu PY, Azzopardi D, Ballard R, Edwards AD, Ferriero DM, Polin RA, Robertson CM, Thoresen M, et al. Determinants of outcomes after head cooling for neonatal encephalopathy. Pediatrics. 2007;119(5):912–21.PubMed Wyatt JS, Gluckman PD, Liu PY, Azzopardi D, Ballard R, Edwards AD, Ferriero DM, Polin RA, Robertson CM, Thoresen M, et al. Determinants of outcomes after head cooling for neonatal encephalopathy. Pediatrics. 2007;119(5):912–21.PubMed
182.
go back to reference Sun S, Tang W, Song F, Yu T, Ristagno G, Shan Y, Weng Y, Weil MH. The effects of epinephrine on outcomes of normothermic and therapeutic hypothermic cardiopulmonary resuscitation. Crit Care Med. 2010;38(11):2175–80.PubMed Sun S, Tang W, Song F, Yu T, Ristagno G, Shan Y, Weng Y, Weil MH. The effects of epinephrine on outcomes of normothermic and therapeutic hypothermic cardiopulmonary resuscitation. Crit Care Med. 2010;38(11):2175–80.PubMed
183.
go back to reference Hachimi-Idrissi S, Van Hemelrijck A, Michotte A, Smolders I, Sarre S, Ebinger G, Huyghens L, Michotte Y. Postischemic mild hypothermia reduces neurotransmitter release and astroglial cell proliferation during reperfusion after asphyxial cardiac arrest in rats. Brain Res. 2004;1019(1–2):217–25.PubMed Hachimi-Idrissi S, Van Hemelrijck A, Michotte A, Smolders I, Sarre S, Ebinger G, Huyghens L, Michotte Y. Postischemic mild hypothermia reduces neurotransmitter release and astroglial cell proliferation during reperfusion after asphyxial cardiac arrest in rats. Brain Res. 2004;1019(1–2):217–25.PubMed
184.
go back to reference Baumann E, Preston E, Slinn J, Stanimirovic D. Post-ischemic hypothermia attenuates loss of the vascular basement membrane proteins, agrin and SPARC, and the blood-brain barrier disruption after global cerebral ischemia. Brain Res. 2009;1269:185–97.PubMed Baumann E, Preston E, Slinn J, Stanimirovic D. Post-ischemic hypothermia attenuates loss of the vascular basement membrane proteins, agrin and SPARC, and the blood-brain barrier disruption after global cerebral ischemia. Brain Res. 2009;1269:185–97.PubMed
185.
go back to reference Karibe H, Zarow GJ, Graham SH, Weinstein PR. Mild intraischemic hypothermia reduces postischemic hyperperfusion, delayed postischemic hypoperfusion, blood-brain barrier disruption, brain edema, and neuronal damage volume after temporary focal cerebral ischemia in rats. J Cereb Blood Flow Metab. 1994;14(4):620–7.PubMed Karibe H, Zarow GJ, Graham SH, Weinstein PR. Mild intraischemic hypothermia reduces postischemic hyperperfusion, delayed postischemic hypoperfusion, blood-brain barrier disruption, brain edema, and neuronal damage volume after temporary focal cerebral ischemia in rats. J Cereb Blood Flow Metab. 1994;14(4):620–7.PubMed
186.
go back to reference McCullough JN, Zhang N, Reich DL, Juvonen TS, Klein JJ, Spielvogel D, Ergin MA, Griepp RB. Cerebral metabolic suppression during hypothermic circulatory arrest in humans. Ann Thorac Surg. 1999;67(6):1895–9 (discussion 1919–1821).PubMed McCullough JN, Zhang N, Reich DL, Juvonen TS, Klein JJ, Spielvogel D, Ergin MA, Griepp RB. Cerebral metabolic suppression during hypothermic circulatory arrest in humans. Ann Thorac Surg. 1999;67(6):1895–9 (discussion 1919–1821).PubMed
187.
go back to reference Mizuhara A. The protective effect of hypothermia in a new transient cerebral ischemic model of the rat–A 31P magnetic resonance spectroscopy in vivo study. Nihon Kyobu Geka Gakkai Zasshi. 1996;44(1):1–8.MathSciNetPubMed Mizuhara A. The protective effect of hypothermia in a new transient cerebral ischemic model of the rat–A 31P magnetic resonance spectroscopy in vivo study. Nihon Kyobu Geka Gakkai Zasshi. 1996;44(1):1–8.MathSciNetPubMed
188.
go back to reference Takasu A, Yagi K, Okada Y. Effect of mild hypothermia on ischemia-induced release of endothelin-1 in dog brain. Resuscitation. 1996;31(1):59–64.PubMed Takasu A, Yagi K, Okada Y. Effect of mild hypothermia on ischemia-induced release of endothelin-1 in dog brain. Resuscitation. 1996;31(1):59–64.PubMed
189.
go back to reference Schreckinger M, Marion DW. Contemporary management of traumatic intracranial hypertension: is there a role for therapeutic hypothermia? Neurocrit Care. 2009;11(3):427–36.PubMed Schreckinger M, Marion DW. Contemporary management of traumatic intracranial hypertension: is there a role for therapeutic hypothermia? Neurocrit Care. 2009;11(3):427–36.PubMed
190.
go back to reference Lee HC, Chuang HC, Cho DY, Cheng KF, Lin PH, Chen CC. Applying cerebral hypothermia and brain oxygen monitoring in treating severe traumatic brain injury. World Neurosurg. 2010;74(6):654–60.PubMed Lee HC, Chuang HC, Cho DY, Cheng KF, Lin PH, Chen CC. Applying cerebral hypothermia and brain oxygen monitoring in treating severe traumatic brain injury. World Neurosurg. 2010;74(6):654–60.PubMed
191.
go back to reference Hillerson DB, Laine ME, Bissell BD, Mefford B. Contemporary targeted temperature management: Clinical evidence and controversies. Perfusion 2022:2676591221076286. Hillerson DB, Laine ME, Bissell BD, Mefford B. Contemporary targeted temperature management: Clinical evidence and controversies. Perfusion 2022:2676591221076286.
192.
go back to reference Topjian A, Hutchins L, DiLiberto MA, Abend NS, Ichord R, Helfaer M, Berg RA, Nadkarni V. Induction and maintenance of therapeutic hypothermia after pediatric cardiac arrest: efficacy of a surface cooling protocol. Pediatr Crit Care Med. 2011;12(3):e127-135.PubMedPubMedCentral Topjian A, Hutchins L, DiLiberto MA, Abend NS, Ichord R, Helfaer M, Berg RA, Nadkarni V. Induction and maintenance of therapeutic hypothermia after pediatric cardiac arrest: efficacy of a surface cooling protocol. Pediatr Crit Care Med. 2011;12(3):e127-135.PubMedPubMedCentral
193.
go back to reference Moler FW, Silverstein FS, Holubkov R, Slomine BS, Christensen JR, Nadkarni VM, Meert KL, Clark AE, Browning B, Pemberton VL, et al. Therapeutic hypothermia after out-of-hospital cardiac arrest in children. N Engl J Med. 2015;372(20):1898–908.PubMedPubMedCentral Moler FW, Silverstein FS, Holubkov R, Slomine BS, Christensen JR, Nadkarni VM, Meert KL, Clark AE, Browning B, Pemberton VL, et al. Therapeutic hypothermia after out-of-hospital cardiac arrest in children. N Engl J Med. 2015;372(20):1898–908.PubMedPubMedCentral
194.
go back to reference Moler FW, Silverstein FS, Holubkov R, Slomine BS, Christensen JR, Nadkarni VM, Meert KL, Browning B, Pemberton VL, Page K, et al. Therapeutic hypothermia after in-hospital cardiac arrest in children. N Engl J Med. 2017;376(4):318–29.PubMedPubMedCentral Moler FW, Silverstein FS, Holubkov R, Slomine BS, Christensen JR, Nadkarni VM, Meert KL, Browning B, Pemberton VL, Page K, et al. Therapeutic hypothermia after in-hospital cardiac arrest in children. N Engl J Med. 2017;376(4):318–29.PubMedPubMedCentral
195.
go back to reference Mulder M, Gibbs HG, Smith SW, Dhaliwal R, Scott NL, Sprenkle MD, Geocadin RG. Awakening and withdrawal of life-sustaining treatment in cardiac arrest survivors treated with therapeutic hypothermia*. Crit Care Med. 2014;42(12):2493–9.PubMedPubMedCentral Mulder M, Gibbs HG, Smith SW, Dhaliwal R, Scott NL, Sprenkle MD, Geocadin RG. Awakening and withdrawal of life-sustaining treatment in cardiac arrest survivors treated with therapeutic hypothermia*. Crit Care Med. 2014;42(12):2493–9.PubMedPubMedCentral
196.
go back to reference Dragancea I, Rundgren M, Englund E, Friberg H, Cronberg T. The influence of induced hypothermia and delayed prognostication on the mode of death after cardiac arrest. Resuscitation. 2013;84(3):337–42.PubMed Dragancea I, Rundgren M, Englund E, Friberg H, Cronberg T. The influence of induced hypothermia and delayed prognostication on the mode of death after cardiac arrest. Resuscitation. 2013;84(3):337–42.PubMed
197.
go back to reference Tokutomi T, Morimoto K, Miyagi T, Yamaguchi S, Ishikawa K, Shigemori M. Optimal temperature for the management of severe traumatic brain injury: effect of hypothermia on intracranial pressure, systemic and intracranial hemodynamics, and metabolism. Neurosurgery. 2007;61(1 Suppl):256–65 (discussion 265–256).PubMed Tokutomi T, Morimoto K, Miyagi T, Yamaguchi S, Ishikawa K, Shigemori M. Optimal temperature for the management of severe traumatic brain injury: effect of hypothermia on intracranial pressure, systemic and intracranial hemodynamics, and metabolism. Neurosurgery. 2007;61(1 Suppl):256–65 (discussion 265–256).PubMed
198.
go back to reference International Liaison Committee on R. The International Liaison Committee on Resuscitation (ILCOR) consensus on science with treatment recommendations for pediatric and neonatal patients: pediatric basic and advanced life support. Pediatrics. 2006;117(5):955–77. International Liaison Committee on R. The International Liaison Committee on Resuscitation (ILCOR) consensus on science with treatment recommendations for pediatric and neonatal patients: pediatric basic and advanced life support. Pediatrics. 2006;117(5):955–77.
199.
go back to reference Callaway CW, Coppler PJ, Faro J, Puyana JS, Solanki P, Dezfulian C, Doshi AA, Elmer J, Frisch A, Guyette FX, et al. Association of initial illness severity and outcomes after cardiac arrest with targeted temperature management at 36 degrees C or 33 degrees C. JAMA Netw Open. 2020;3(7):e208215.PubMedPubMedCentral Callaway CW, Coppler PJ, Faro J, Puyana JS, Solanki P, Dezfulian C, Doshi AA, Elmer J, Frisch A, Guyette FX, et al. Association of initial illness severity and outcomes after cardiac arrest with targeted temperature management at 36 degrees C or 33 degrees C. JAMA Netw Open. 2020;3(7):e208215.PubMedPubMedCentral
200.
201.
go back to reference Shann F. Hypothermia for traumatic brain injury: how soon, how cold, and how long? Lancet. 2003;362(9400):1950–1.PubMed Shann F. Hypothermia for traumatic brain injury: how soon, how cold, and how long? Lancet. 2003;362(9400):1950–1.PubMed
202.
go back to reference Hypothermia after Cardiac Arrest Study G. Mild therapeutic hypothermia to improve the neurologic outcome after cardiac arrest. N Engl J Med. 2002;346(8):549–56. Hypothermia after Cardiac Arrest Study G. Mild therapeutic hypothermia to improve the neurologic outcome after cardiac arrest. N Engl J Med. 2002;346(8):549–56.
203.
go back to reference Dankiewicz J, Cronberg T, Lilja G, Jakobsen JC, Levin H, Ullen S, Rylander C, Wise MP, Oddo M, Cariou A, et al. Hypothermia versus normothermia after out-of-hospital cardiac arrest. N Engl J Med. 2021;384(24):2283–94.PubMed Dankiewicz J, Cronberg T, Lilja G, Jakobsen JC, Levin H, Ullen S, Rylander C, Wise MP, Oddo M, Cariou A, et al. Hypothermia versus normothermia after out-of-hospital cardiac arrest. N Engl J Med. 2021;384(24):2283–94.PubMed
204.
go back to reference Nielsen N, Wetterslev J, Cronberg T, Erlinge D, Gasche Y, Hassager C, Horn J, Hovdenes J, Kjaergaard J, Kuiper M, et al. Targeted temperature management at 33 degrees C versus 36 degrees C after cardiac arrest. N Engl J Med. 2013;369(23):2197–206.PubMed Nielsen N, Wetterslev J, Cronberg T, Erlinge D, Gasche Y, Hassager C, Horn J, Hovdenes J, Kjaergaard J, Kuiper M, et al. Targeted temperature management at 33 degrees C versus 36 degrees C after cardiac arrest. N Engl J Med. 2013;369(23):2197–206.PubMed
205.
go back to reference Granfeldt A, Holmberg MJ, Nolan JP, Soar J, Andersen LW. International liaison committee on resuscitation advanced life support task F: targeted temperature management in adult cardiac arrest: systematic review and meta-analysis. Resuscitation. 2021;167:160–72.PubMed Granfeldt A, Holmberg MJ, Nolan JP, Soar J, Andersen LW. International liaison committee on resuscitation advanced life support task F: targeted temperature management in adult cardiac arrest: systematic review and meta-analysis. Resuscitation. 2021;167:160–72.PubMed
206.
go back to reference Bembea MM, Nadkarni VM, Diener-West M, Venugopal V, Carey SM, Berg RA, Hunt EA. American Heart Association National registry of cardiopulmonary resuscitation I: temperature patterns in the early postresuscitation period after pediatric inhospital cardiac arrest. Pediatr Crit Care Med. 2010;11(6):723–30.PubMed Bembea MM, Nadkarni VM, Diener-West M, Venugopal V, Carey SM, Berg RA, Hunt EA. American Heart Association National registry of cardiopulmonary resuscitation I: temperature patterns in the early postresuscitation period after pediatric inhospital cardiac arrest. Pediatr Crit Care Med. 2010;11(6):723–30.PubMed
207.
go back to reference Hickey RW, Kochanek PM, Ferimer H, Graham SH, Safar P. Hypothermia and hyperthermia in children after resuscitation from cardiac arrest. Pediatrics. 2000;106(1 Pt 1):118–22.PubMed Hickey RW, Kochanek PM, Ferimer H, Graham SH, Safar P. Hypothermia and hyperthermia in children after resuscitation from cardiac arrest. Pediatrics. 2000;106(1 Pt 1):118–22.PubMed
208.
go back to reference Fink EL, Clark RS, Kochanek PM, Bell MJ, Watson RS. A tertiary care center’s experience with therapeutic hypothermia after pediatric cardiac arrest. Pediatr Crit Care Med. 2010;11(1):66–74.PubMedPubMedCentral Fink EL, Clark RS, Kochanek PM, Bell MJ, Watson RS. A tertiary care center’s experience with therapeutic hypothermia after pediatric cardiac arrest. Pediatr Crit Care Med. 2010;11(1):66–74.PubMedPubMedCentral
209.
go back to reference Hoiland RL, Rikhraj KJK, Thiara S, Fordyce C, Kramer AH, Skrifvars MB, Wellington CL, Griesdale DE, Fergusson NA, Sekhon MS, Neurologic prognostication after cardiac arrest using brain biomarkers: a systematic review and meta-analysis. JAMA Neurol. 2022. Hoiland RL, Rikhraj KJK, Thiara S, Fordyce C, Kramer AH, Skrifvars MB, Wellington CL, Griesdale DE, Fergusson NA, Sekhon MS, Neurologic prognostication after cardiac arrest using brain biomarkers: a systematic review and meta-analysis. JAMA Neurol. 2022.
210.
go back to reference Fink EL, Kochanek PM, Panigrahy A, Beers SR, Berger RP, Bayir H, Pineda J, Newth C, Topjian AA, Press CA, et al. Association of blood-based brain injury biomarker concentrations with outcomes after pediatric cardiac arrest. JAMA Netw Open. 2022;5(9):e2230518.PubMedPubMedCentral Fink EL, Kochanek PM, Panigrahy A, Beers SR, Berger RP, Bayir H, Pineda J, Newth C, Topjian AA, Press CA, et al. Association of blood-based brain injury biomarker concentrations with outcomes after pediatric cardiac arrest. JAMA Netw Open. 2022;5(9):e2230518.PubMedPubMedCentral
211.
go back to reference Suzuki Y, Mogami Y, Toribe Y, Yamada K, Yanagihara K, Hirata I, Mano T. Prolonged elevation of serum neuron-specific enolase in children after clinical diagnosis of brain death. J Child Neurol. 2012;27(1):7–10.PubMed Suzuki Y, Mogami Y, Toribe Y, Yamada K, Yanagihara K, Hirata I, Mano T. Prolonged elevation of serum neuron-specific enolase in children after clinical diagnosis of brain death. J Child Neurol. 2012;27(1):7–10.PubMed
212.
go back to reference Fink EL, Berger RP, Clark RS, Watson RS, Angus DC, Richichi R, Panigrahy A, Callaway CW, Bell MJ, Kochanek PM. Serum biomarkers of brain injury to classify outcome after pediatric cardiac arrest*. Crit Care Med. 2014;42(3):664–74.PubMedPubMedCentral Fink EL, Berger RP, Clark RS, Watson RS, Angus DC, Richichi R, Panigrahy A, Callaway CW, Bell MJ, Kochanek PM. Serum biomarkers of brain injury to classify outcome after pediatric cardiac arrest*. Crit Care Med. 2014;42(3):664–74.PubMedPubMedCentral
213.
go back to reference Topjian AA, Lin R, Morris MC, Ichord R, Drott H, Bayer CR, Helfaer MA, Nadkarni V. Neuron-specific enolase and S-100B are associated with neurologic outcome after pediatric cardiac arrest. Pediatr Crit Care Med. 2009;10(4):479–90.PubMed Topjian AA, Lin R, Morris MC, Ichord R, Drott H, Bayer CR, Helfaer MA, Nadkarni V. Neuron-specific enolase and S-100B are associated with neurologic outcome after pediatric cardiac arrest. Pediatr Crit Care Med. 2009;10(4):479–90.PubMed
214.
go back to reference Prout AJ, Wolf MS, Fink EL. Translating biomarkers from research to clinical use in pediatric neurocritical care: focus on traumatic brain injury and cardiac arrest. Curr Opin Pediatr. 2017;29(3):272–9.PubMed Prout AJ, Wolf MS, Fink EL. Translating biomarkers from research to clinical use in pediatric neurocritical care: focus on traumatic brain injury and cardiac arrest. Curr Opin Pediatr. 2017;29(3):272–9.PubMed
215.
go back to reference Fink EL, Berger RP, Clark RS, Watson RS, Angus DC, Panigrahy A, Richichi R, Callaway CW, Bell MJ, Mondello S, et al. Exploratory study of serum ubiquitin carboxyl-terminal esterase L1 and glial fibrillary acidic protein for outcome prognostication after pediatric cardiac arrest. Resuscitation. 2016;101:65–70.PubMedPubMedCentral Fink EL, Berger RP, Clark RS, Watson RS, Angus DC, Panigrahy A, Richichi R, Callaway CW, Bell MJ, Mondello S, et al. Exploratory study of serum ubiquitin carboxyl-terminal esterase L1 and glial fibrillary acidic protein for outcome prognostication after pediatric cardiac arrest. Resuscitation. 2016;101:65–70.PubMedPubMedCentral
216.
go back to reference Fink EL, Clark RSB, Berger RP, Fabio A, Angus DC, Watson RS, Gianakas JJ, Panigrahy A, Callaway CW, Bell MJ, et al. 24 vs. 72 hours of hypothermia for pediatric cardiac arrest: a pilot, randomized controlled trial. Resuscitation. 2018;126:14–20.PubMedPubMedCentral Fink EL, Clark RSB, Berger RP, Fabio A, Angus DC, Watson RS, Gianakas JJ, Panigrahy A, Callaway CW, Bell MJ, et al. 24 vs. 72 hours of hypothermia for pediatric cardiac arrest: a pilot, randomized controlled trial. Resuscitation. 2018;126:14–20.PubMedPubMedCentral
217.
go back to reference Tasker RC. Validating serologic biomarkers of brain injury for cardiac arrest research. Pediatr Crit Care Med. 2009;10(4):529–30.PubMed Tasker RC. Validating serologic biomarkers of brain injury for cardiac arrest research. Pediatr Crit Care Med. 2009;10(4):529–30.PubMed
Metadata
Title
Neuromonitoring after Pediatric Cardiac Arrest: Cerebral Physiology and Injury Stratification
Authors
Julia C. Slovis
Ashley Bach
Forrest Beaulieu
Gabe Zuckerberg
Alexis Topjian
Matthew P. Kirschen
Publication date
01-04-2023
Publisher
Springer US
Published in
Neurocritical Care / Issue 1/2024
Print ISSN: 1541-6933
Electronic ISSN: 1556-0961
DOI
https://doi.org/10.1007/s12028-023-01685-6

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