Skip to main content
Top
Published in: Journal of Clinical Monitoring and Computing 4/2019

Open Access 01-08-2019 | Original Research

Cerebrovascular assessment of patients undergoing shoulder surgery in beach chair position using a multiparameter transcranial Doppler approach

Authors: Danilo Cardim, Chiara Robba, Basil Matta, Graham Tytherleigh-Strong, Niel Kang, Bernhard Schmidt, Joseph Donnelly, Leanne Calviello, Peter Smielewski, Marek Czosnyka

Published in: Journal of Clinical Monitoring and Computing | Issue 4/2019

Login to get access

Abstract

Although the beach-chair position (BCP) is widely used during shoulder surgery, it has been reported to associate with a reduction in cerebral blood flow, oxygenation, and risk of brain ischaemia. We assessed cerebral haemodynamics using a multiparameter transcranial Doppler-derived approach in patients undergoing shoulder surgery. 23 anaesthetised patients (propofol (2 mg/kg)) without history of neurologic pathology undergoing elective shoulder surgery were included. Arterial blood pressure (ABP, monitored with a finger-cuff plethysmograph calibrated at the auditory meatus level) and cerebral blood flow velocity (FV, monitored in the middle cerebral artery) were recorded in supine and in BCP. All subjects underwent interscalene block ipsilateral to the side of FV measurement. We evaluated non-invasive intracranial pressure (nICP) and cerebral perfusion pressure (nCPP) calculated with a black-box mathematical model; critical closing pressure (CrCP); diastolic closing margin (DCM—pressure reserve available to avoid diastolic flow cessation); cerebral autoregulation index (Mxa); pulsatility index (PI). Significant changes occured for DCM [mean decrease of 6.43 mm Hg (p = 0.01)] and PI [mean increase of 0.11 (p = 0.05)]. ABP, FV, nICP, nCPP and CrCP showed a decreasing trend. Cerebral autoregulation was dysfunctional (Mxa > 0.3) and PI deviated from normal ranges (PI > 0.8) in both phases. ABP and nCPP values were low (< 60 mm Hg) in both phases. Changes between phases did not result in CrCP reaching diastolic ABP, therefore DCM did not reach critical values (≤ 0 mm Hg). BCP resulted in significant cerebral haemodynamic changes. If left untreated, reduction in cerebral blood flow may result in brain ischaemia and post-operative neurologic deficit.
Literature
1.
go back to reference Peruto CM, Ciccotti MG, Cohen SB. Shoulder arthroscopy positioning: lateral decubitus versus beach chair. Arthrosc J Arthrosc Relat Surg. 2009;25:891–6.CrossRef Peruto CM, Ciccotti MG, Cohen SB. Shoulder arthroscopy positioning: lateral decubitus versus beach chair. Arthrosc J Arthrosc Relat Surg. 2009;25:891–6.CrossRef
3.
go back to reference Buhre W, Weyland A, Buhre K, Kazmaier S, Mursch K, Schmidt M, et al. Effects of the sitting position on the distribution of blood volume in patients undergoing neurosurgical procedures. Br J Anaesth. 2000;84:354–7.CrossRefPubMed Buhre W, Weyland A, Buhre K, Kazmaier S, Mursch K, Schmidt M, et al. Effects of the sitting position on the distribution of blood volume in patients undergoing neurosurgical procedures. Br J Anaesth. 2000;84:354–7.CrossRefPubMed
4.
go back to reference Bhatti MT, Enneking FK. Visual loss and ophthalmoplegia after shoulder surgery. Anesth Analg. 2003;96:899–902.CrossRefPubMed Bhatti MT, Enneking FK. Visual loss and ophthalmoplegia after shoulder surgery. Anesth Analg. 2003;96:899–902.CrossRefPubMed
5.
go back to reference Morandi X, Riffaud L, Amlashi SFA, Brassier G. Extensive spinal cord infarction after posterior fossa surgery in the sitting position: case report. Neurosurgery 2004;54:1512-5 (discussion 1515-6).CrossRef Morandi X, Riffaud L, Amlashi SFA, Brassier G. Extensive spinal cord infarction after posterior fossa surgery in the sitting position: case report. Neurosurgery 2004;54:1512-5 (discussion 1515-6).CrossRef
6.
go back to reference Pohl A, Cullen DJ. Cerebral ischemia during shoulder surgery in the upright position: a case series. J Clin Anesth. 2005;17:463–9.CrossRefPubMed Pohl A, Cullen DJ. Cerebral ischemia during shoulder surgery in the upright position: a case series. J Clin Anesth. 2005;17:463–9.CrossRefPubMed
7.
go back to reference Friedman DJ, Parnes NZ, Zimmer Z, Higgins LD, Warner JJP. Prevalence of cerebrovascular events during shoulder surgery and association with patient position. Orthopedics 2009;32:256–61.CrossRef Friedman DJ, Parnes NZ, Zimmer Z, Higgins LD, Warner JJP. Prevalence of cerebrovascular events during shoulder surgery and association with patient position. Orthopedics 2009;32:256–61.CrossRef
8.
go back to reference Weber SC, Abrams JS, Nottage WM. Complications associated with arthroscopic shoulder surgery. Arthroscopy 2002;18:88–95.CrossRefPubMed Weber SC, Abrams JS, Nottage WM. Complications associated with arthroscopic shoulder surgery. Arthroscopy 2002;18:88–95.CrossRefPubMed
9.
go back to reference Yadeau JT, Casciano M, Liu SS, Edmonds CR, Gordon M, Stanton J, et al. Stroke, regional anesthesia in the sitting position, and hypotension: a review of 4169 ambulatory surgery patients. Reg Anesth Pain Med. 2011;36:430–5.CrossRefPubMed Yadeau JT, Casciano M, Liu SS, Edmonds CR, Gordon M, Stanton J, et al. Stroke, regional anesthesia in the sitting position, and hypotension: a review of 4169 ambulatory surgery patients. Reg Anesth Pain Med. 2011;36:430–5.CrossRefPubMed
10.
go back to reference Papadonikolakis A, Wiesler ER, Olympio MA, Poehling GG. Avoiding catastrophic complications of stroke and death related to shoulder surgery in the sitting position. Arthroscopy 2008;24:481–2.CrossRefPubMed Papadonikolakis A, Wiesler ER, Olympio MA, Poehling GG. Avoiding catastrophic complications of stroke and death related to shoulder surgery in the sitting position. Arthroscopy 2008;24:481–2.CrossRefPubMed
11.
go back to reference Drummond JC, Lee RR, Howell JP. Focal cerebral ischemia after surgery in the beach chair position: the role of a congenital variation of circle of Willis anatomy. Anesth Analg. 2012;114:1301–3.CrossRefPubMed Drummond JC, Lee RR, Howell JP. Focal cerebral ischemia after surgery in the beach chair position: the role of a congenital variation of circle of Willis anatomy. Anesth Analg. 2012;114:1301–3.CrossRefPubMed
12.
go back to reference McCulloch TJ, Liyanagama K, Petchell J. Relative hypotension in the beach-chair position: effects on middle cerebral artery blood velocity. Anesth Intensive Care. 2010;38:486–91.CrossRef McCulloch TJ, Liyanagama K, Petchell J. Relative hypotension in the beach-chair position: effects on middle cerebral artery blood velocity. Anesth Intensive Care. 2010;38:486–91.CrossRef
13.
go back to reference Hanouz J-L, Fiant A-L, Gérard J-L. Middle cerebral artery blood flow velocity during beach chair position for shoulder surgery under general anesthesia. J Clin Anesth. 2016;33:31–6.CrossRefPubMed Hanouz J-L, Fiant A-L, Gérard J-L. Middle cerebral artery blood flow velocity during beach chair position for shoulder surgery under general anesthesia. J Clin Anesth. 2016;33:31–6.CrossRefPubMed
14.
go back to reference Schmidt B, Klingelhöfer J, Schwarze JJ, Sander D, Wittich I. Noninvasive prediction of intracranial pressure curves using transcranial doppler ultrasonography and blood pressure curves. Stroke 1997;28:2465–72.CrossRefPubMed Schmidt B, Klingelhöfer J, Schwarze JJ, Sander D, Wittich I. Noninvasive prediction of intracranial pressure curves using transcranial doppler ultrasonography and blood pressure curves. Stroke 1997;28:2465–72.CrossRefPubMed
15.
go back to reference Kasuga Y, Nagai H, Hasegawa Y, Nitta M. Transmission characteristics of pulse waves in the intracranial cavity of dogs. J Neurosurg. 1987;66:907–14.CrossRefPubMed Kasuga Y, Nagai H, Hasegawa Y, Nitta M. Transmission characteristics of pulse waves in the intracranial cavity of dogs. J Neurosurg. 1987;66:907–14.CrossRefPubMed
16.
go back to reference Marmarelis PMV. Analysis of physiological systems. New York: Plenum Press; 1978.CrossRef Marmarelis PMV. Analysis of physiological systems. New York: Plenum Press; 1978.CrossRef
17.
go back to reference Cardim D, Robba C, Donnelly J, Bohdanowicz M, Schmidt B, Damian M, et al. Prospective study on non-invasive assessment of ICP in head injured patients: comparison of four methods. J Neurotrauma 2015;33:792–802. Cardim D, Robba C, Donnelly J, Bohdanowicz M, Schmidt B, Damian M, et al. Prospective study on non-invasive assessment of ICP in head injured patients: comparison of four methods. J Neurotrauma 2015;33:792–802.
18.
go back to reference Czosnyka M, Brady K, Reinhard M, Smielewski P, Steiner LA. Monitoring of cerebrovascular autoregulation: facts, myths, and missing links. Neurocrit Care. 2009;10:373–86.CrossRef Czosnyka M, Brady K, Reinhard M, Smielewski P, Steiner LA. Monitoring of cerebrovascular autoregulation: facts, myths, and missing links. Neurocrit Care. 2009;10:373–86.CrossRef
19.
go back to reference Czosnyka M, Smielewski P, Kirkpatrick P, Menon DK, Pickard JD. Monitoring of cerebral autoregulation in head-injured patients. Stroke 1996;27:1829–34.CrossRefPubMed Czosnyka M, Smielewski P, Kirkpatrick P, Menon DK, Pickard JD. Monitoring of cerebral autoregulation in head-injured patients. Stroke 1996;27:1829–34.CrossRefPubMed
20.
go back to reference Czosnyka M, Smielewski P, Piechnik S, Steiner L, Pickard JD. Cerebral autoregulation following head injury. J Neurosurg. 2001;95:756–63.CrossRefPubMed Czosnyka M, Smielewski P, Piechnik S, Steiner L, Pickard JD. Cerebral autoregulation following head injury. J Neurosurg. 2001;95:756–63.CrossRefPubMed
21.
go back to reference De Riva N, Budohoski KP, Smielewski P, Kasprowicz M, Zweifel C, Steiner LA, et al. Transcranial doppler pulsatility index: What it is and what it isn’t. Neurocrit Care. 2012;17:58–66.CrossRefPubMed De Riva N, Budohoski KP, Smielewski P, Kasprowicz M, Zweifel C, Steiner LA, et al. Transcranial doppler pulsatility index: What it is and what it isn’t. Neurocrit Care. 2012;17:58–66.CrossRefPubMed
22.
go back to reference Nichol J, Girling F, Jerrard W, Claxton EB, Burton AC. Fundamental instability of the small blood vessels and critical closing pressures in vascular beds. Am J Physiol. 1951;164:330–44.CrossRefPubMed Nichol J, Girling F, Jerrard W, Claxton EB, Burton AC. Fundamental instability of the small blood vessels and critical closing pressures in vascular beds. Am J Physiol. 1951;164:330–44.CrossRefPubMed
23.
go back to reference Dewey RC, Pieper HP, Hunt WE. Experimental cerebral hemodynamics. Vasomotor tone, critical closing pressure, and vascular bed resistance. J Neurosurg. 1974;41:597–606.CrossRefPubMed Dewey RC, Pieper HP, Hunt WE. Experimental cerebral hemodynamics. Vasomotor tone, critical closing pressure, and vascular bed resistance. J Neurosurg. 1974;41:597–606.CrossRefPubMed
24.
go back to reference Czosnyka M, Richards H, Pickard JD, Harris N, Iyer V. Frequency-dependent properties of cerebral blood transport—an experimental study in anaesthetized rabbits. Ultrasound Med Biol. 1994;20:391–9.CrossRefPubMed Czosnyka M, Richards H, Pickard JD, Harris N, Iyer V. Frequency-dependent properties of cerebral blood transport—an experimental study in anaesthetized rabbits. Ultrasound Med Biol. 1994;20:391–9.CrossRefPubMed
25.
go back to reference Michel E, Hillebrand S, vonTwickel J, Zernikow B, Jorch G. Frequency dependence of cerebrovascular impedance in preterm neonates: a different view on critical closing pressure. J Cereb Blood Flow Metab. 1997;17:1127–31.CrossRefPubMed Michel E, Hillebrand S, vonTwickel J, Zernikow B, Jorch G. Frequency dependence of cerebrovascular impedance in preterm neonates: a different view on critical closing pressure. J Cereb Blood Flow Metab. 1997;17:1127–31.CrossRefPubMed
26.
go back to reference Puppo C, Camacho J, Yelicich B, Moraes L, Biestro A, Gomez H. Bedside study of cerebral critical closing pressure in patients with severe traumatic brain injury: a transcranial Doppler study. Acta Neurochir Suppl. 2012;114:283–8.CrossRefPubMed Puppo C, Camacho J, Yelicich B, Moraes L, Biestro A, Gomez H. Bedside study of cerebral critical closing pressure in patients with severe traumatic brain injury: a transcranial Doppler study. Acta Neurochir Suppl. 2012;114:283–8.CrossRefPubMed
27.
go back to reference Varsos GV, Richards H, Kasprowicz M, Budohoski KP, Brady KM, Reinhard M, et al. Critical closing pressure determined with a model of cerebrovascular impedance. J Cereb Blood Flow Metab. 2013;33:235–43.CrossRefPubMed Varsos GV, Richards H, Kasprowicz M, Budohoski KP, Brady KM, Reinhard M, et al. Critical closing pressure determined with a model of cerebrovascular impedance. J Cereb Blood Flow Metab. 2013;33:235–43.CrossRefPubMed
28.
go back to reference Varsos GV, Richards HK, Kasprowicz M, Reinhard M, Smielewski P, Brady KM, et al. Cessation of diastolic cerebral blood flow velocity: the role of critical closing pressure. Neurocrit Care. 2014;20:40–8.CrossRefPubMed Varsos GV, Richards HK, Kasprowicz M, Reinhard M, Smielewski P, Brady KM, et al. Cessation of diastolic cerebral blood flow velocity: the role of critical closing pressure. Neurocrit Care. 2014;20:40–8.CrossRefPubMed
29.
go back to reference Tegeler CH, Crutchfield K, Katsnelson M, Kim J, Tang R, Passmore Griffin L, et al. Transcranial doppler velocities in a large, healthy population. J Neuroimaging. 2013;23:466–72.CrossRefPubMed Tegeler CH, Crutchfield K, Katsnelson M, Kim J, Tang R, Passmore Griffin L, et al. Transcranial doppler velocities in a large, healthy population. J Neuroimaging. 2013;23:466–72.CrossRefPubMed
30.
go back to reference Bratton SL, Chestnut RM, Ghajar J, McConnell Hammond FF, Harris OA, Hartl R, et al. Guidelines for the management of severe traumatic brain injury. IX. Cerebral perfusion thresholds. J Neurotrauma. 2007;24(Suppl 1):59–64.CrossRef Bratton SL, Chestnut RM, Ghajar J, McConnell Hammond FF, Harris OA, Hartl R, et al. Guidelines for the management of severe traumatic brain injury. IX. Cerebral perfusion thresholds. J Neurotrauma. 2007;24(Suppl 1):59–64.CrossRef
31.
32.
go back to reference Paulson OB, Strandgaard S, Edvinsson L. Cerebral autoregulation. Cerebrovasc Brain Metab Rev. 1990;2:161–92.PubMed Paulson OB, Strandgaard S, Edvinsson L. Cerebral autoregulation. Cerebrovasc Brain Metab Rev. 1990;2:161–92.PubMed
33.
go back to reference Laflam A, Joshi B, Brady K, Yenokyan G, Brown C, Everett A, et al. Shoulder surgery in the beach chair position is associated with diminished cerebral autoregulation but no differences in postoperative cognition or brain injury biomarker levels compared with supine positioning. Anesth Analg. 2015;120:176–85.CrossRefPubMedPubMedCentral Laflam A, Joshi B, Brady K, Yenokyan G, Brown C, Everett A, et al. Shoulder surgery in the beach chair position is associated with diminished cerebral autoregulation but no differences in postoperative cognition or brain injury biomarker levels compared with supine positioning. Anesth Analg. 2015;120:176–85.CrossRefPubMedPubMedCentral
34.
go back to reference Hayashi K, Tanabe K, Minami K, Sakata K, Nagase K, Iida H. Effect of blood pressure elevation on cerebral oxygen desaturation in the beach chair position. Asian J Anesthesiol. 2017;55:13–6.CrossRefPubMed Hayashi K, Tanabe K, Minami K, Sakata K, Nagase K, Iida H. Effect of blood pressure elevation on cerebral oxygen desaturation in the beach chair position. Asian J Anesthesiol. 2017;55:13–6.CrossRefPubMed
35.
go back to reference Cox RM, Jamgochian GC, Nicholson K, Wong JC, Namdari S, Abboud JA. The effectiveness of cerebral oxygenation monitoring during arthroscopic shoulder surgery in the beach chair position: a randomized blinded study. J Shoulder Elb Surg. 2018;27:692–700.CrossRef Cox RM, Jamgochian GC, Nicholson K, Wong JC, Namdari S, Abboud JA. The effectiveness of cerebral oxygenation monitoring during arthroscopic shoulder surgery in the beach chair position: a randomized blinded study. J Shoulder Elb Surg. 2018;27:692–700.CrossRef
36.
go back to reference Strebel S, Lam AM, Matta B, Mayberg TS, Aaslid R, Newell DW. Dynamic and static cerebral autoregulation during isoflurane, desflurane, and propofol anesthesia. Anesthesiology. 1995;83:66–76.CrossRefPubMed Strebel S, Lam AM, Matta B, Mayberg TS, Aaslid R, Newell DW. Dynamic and static cerebral autoregulation during isoflurane, desflurane, and propofol anesthesia. Anesthesiology. 1995;83:66–76.CrossRefPubMed
37.
go back to reference Grathwohl KW, Black IH, Spinella PC, Sweeney J, Robalino J, Helminiak J, et al. Total intravenous anesthesia including ketamine versus volatile gas anesthesia for combat-related operative traumatic brain injury. Anesthesiology 2008;109:44–53.CrossRefPubMed Grathwohl KW, Black IH, Spinella PC, Sweeney J, Robalino J, Helminiak J, et al. Total intravenous anesthesia including ketamine versus volatile gas anesthesia for combat-related operative traumatic brain injury. Anesthesiology 2008;109:44–53.CrossRefPubMed
38.
go back to reference Summors AC, Gupta AK, Matta BF. Dynamic cerebral autoregulation during sevoflurane anesthesia: a comparison with isoflurane. Anesth Analg. 1999;88:341–5.PubMed Summors AC, Gupta AK, Matta BF. Dynamic cerebral autoregulation during sevoflurane anesthesia: a comparison with isoflurane. Anesth Analg. 1999;88:341–5.PubMed
39.
go back to reference Gupta S, Heath K, Matta BF. Effect of incremental doses of sevoflurane on cerebral pressure autoregulation in humans. Br J Anaesth. 1997;79:469–72.CrossRefPubMed Gupta S, Heath K, Matta BF. Effect of incremental doses of sevoflurane on cerebral pressure autoregulation in humans. Br J Anaesth. 1997;79:469–72.CrossRefPubMed
40.
go back to reference Schlünzen L, Cold GE, Rasmussen M, Vafaee MS. Effects of dose-dependent levels of isoflurane on cerebral blood flow in healthy subjects studied using positron emission tomography. Acta Anaesthesiol Scand. 2006;50:306–12.CrossRefPubMed Schlünzen L, Cold GE, Rasmussen M, Vafaee MS. Effects of dose-dependent levels of isoflurane on cerebral blood flow in healthy subjects studied using positron emission tomography. Acta Anaesthesiol Scand. 2006;50:306–12.CrossRefPubMed
41.
go back to reference Hug CC Jr, McLeskey CH, Nahrwold ML, Roizen MF, Stanley TH, Thisted RA, et al. Hemodynamic effects of propofol: Data from over 25,000 patients. Anesth Analg. 1993;77:S21–9.PubMed Hug CC Jr, McLeskey CH, Nahrwold ML, Roizen MF, Stanley TH, Thisted RA, et al. Hemodynamic effects of propofol: Data from over 25,000 patients. Anesth Analg. 1993;77:S21–9.PubMed
42.
go back to reference Smith JJ, Porth CM, Erickson M. Hemodynamic response to the upright posture. J Clin Pharmacol. 1994;34:375–86.CrossRefPubMed Smith JJ, Porth CM, Erickson M. Hemodynamic response to the upright posture. J Clin Pharmacol. 1994;34:375–86.CrossRefPubMed
43.
go back to reference Pin-On P, Schroeder D, Munis J. The hemodynamic management of 5177 neurosurgical and orthopedic patients who underwent surgery in the sitting or “beach chair” Position without incidence of adverse neurologic events. Anesth Analg. 2013;116:1317–24.CrossRefPubMed Pin-On P, Schroeder D, Munis J. The hemodynamic management of 5177 neurosurgical and orthopedic patients who underwent surgery in the sitting or “beach chair” Position without incidence of adverse neurologic events. Anesth Analg. 2013;116:1317–24.CrossRefPubMed
44.
go back to reference Buget MI, Atalar AC, Edipoglu IS, Sungur Z, Sivrikoz N, Karadeniz M, et al. Patient State Index e alterações do fluxo sanguíneo cerebral durante artroscopia do ombro em posição de cadeira de praia. Braz J Anesthesiol. 2016;66:470–4.CrossRefPubMed Buget MI, Atalar AC, Edipoglu IS, Sungur Z, Sivrikoz N, Karadeniz M, et al. Patient State Index e alterações do fluxo sanguíneo cerebral durante artroscopia do ombro em posição de cadeira de praia. Braz J Anesthesiol. 2016;66:470–4.CrossRefPubMed
45.
go back to reference Ursino M, Lodi CA. A simple mathematical model of the interaction between intracranial pressure and cerebral hemodynamics. J Appl Physiol. 1997;82:1256–69.CrossRefPubMed Ursino M, Lodi CA. A simple mathematical model of the interaction between intracranial pressure and cerebral hemodynamics. J Appl Physiol. 1997;82:1256–69.CrossRefPubMed
46.
go back to reference Gabriel RA, Beverly A, Dutton RP, Urman RD. Patterns of intra-arterial blood pressure monitoring for patients undergoing total shoulder arthroplasty under general anesthesia: a retrospective analysis of 23,073 patients. J Clin Monit Comput. 2017;31:877–84.CrossRefPubMed Gabriel RA, Beverly A, Dutton RP, Urman RD. Patterns of intra-arterial blood pressure monitoring for patients undergoing total shoulder arthroplasty under general anesthesia: a retrospective analysis of 23,073 patients. J Clin Monit Comput. 2017;31:877–84.CrossRefPubMed
47.
go back to reference Luedi MM, Bendjelid K. Hemodynamic monitoring during surgeries in beach chair position: what can a big picture teach us? J Clin Monit Comput. 2017;31:873–5.CrossRefPubMed Luedi MM, Bendjelid K. Hemodynamic monitoring during surgeries in beach chair position: what can a big picture teach us? J Clin Monit Comput. 2017;31:873–5.CrossRefPubMed
48.
go back to reference Visocchi M, Chiappini F, Cioni B, Meglio M. Cerebral blood flow velocities and trigeminal ganglion stimulation. A transcranial Doppler study. Stereotact Funct Neurosurg. 1996;66:184–92.CrossRefPubMed Visocchi M, Chiappini F, Cioni B, Meglio M. Cerebral blood flow velocities and trigeminal ganglion stimulation. A transcranial Doppler study. Stereotact Funct Neurosurg. 1996;66:184–92.CrossRefPubMed
49.
go back to reference Reinhard M, Roth M, Müller T, Czosnyka M, Timmer J, Hetzel A. Cerebral autoregulation in carotid artery occlusive disease assessed from spontaneous blood pressure fluctuations by the correlation coefficient index. Stroke 2003;34:2138–44.CrossRefPubMed Reinhard M, Roth M, Müller T, Czosnyka M, Timmer J, Hetzel A. Cerebral autoregulation in carotid artery occlusive disease assessed from spontaneous blood pressure fluctuations by the correlation coefficient index. Stroke 2003;34:2138–44.CrossRefPubMed
Metadata
Title
Cerebrovascular assessment of patients undergoing shoulder surgery in beach chair position using a multiparameter transcranial Doppler approach
Authors
Danilo Cardim
Chiara Robba
Basil Matta
Graham Tytherleigh-Strong
Niel Kang
Bernhard Schmidt
Joseph Donnelly
Leanne Calviello
Peter Smielewski
Marek Czosnyka
Publication date
01-08-2019
Publisher
Springer Netherlands
Published in
Journal of Clinical Monitoring and Computing / Issue 4/2019
Print ISSN: 1387-1307
Electronic ISSN: 1573-2614
DOI
https://doi.org/10.1007/s10877-018-0211-7

Other articles of this Issue 4/2019

Journal of Clinical Monitoring and Computing 4/2019 Go to the issue