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Published in: Translational Stroke Research 4/2017

Open Access 01-08-2017 | Original Article

Evidence for Decreased Brain Parenchymal Volume After Large Intracerebral Hemorrhages: a Potential Mechanism Limiting Intracranial Pressure Rises

Authors: Michael R. Williamson, Frederick Colbourne

Published in: Translational Stroke Research | Issue 4/2017

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Abstract

Potentially fatal intracranial pressure (ICP) rises commonly occur after large intracerebral hemorrhages (ICH). We monitored ICP after infusing 100–160 μL of autologous blood (vs. 0 μL control) into the striatum of rats in order to test the validity of this common model with regard to ICP elevations. Other endpoints included body temperature, behavioral impairment, lesion volume, and edema. Also, we evaluated hippocampal CA1 sector and somatosensory cortical neuron morphology to assess whether global ischemic injury occurred. Despite massive blood infusions, ICP only modestly increased (160 μL 10.8 ± 2.1 mmHg for <36 h vs. control 3.4 ± 0.5 mmHg), with little peri-hematoma edema at 3 days. Body temperature was not affected. Behavioral deficits and tissue loss were infusion volume-dependent. There was no histological evidence of hippocampal or cortical injury, indicating that cell death was confined to the hematoma and closely surrounding tissue. Surprisingly, the most severe hemorrhages significantly increased cell density (~15–20%) and reduced cell body size (~30%) in regions outside the injury site. Additionally, decreased cell size and increased density were observed after collagenase-induced ICH. Parenchymal volume is seemingly reduced after large ICH. Thus, in addition to well-known compliance mechanisms (e.g., displacement of cerebrospinal fluid and cerebral blood), reduced brain parenchymal volume appears to limit ICP rises in rodents with very large mass lesions.
Literature
1.
go back to reference Hemphill JC, Greenberg SM, Anderson C, Becker K, Bendok BR, Cushman M, et al. Guidelines for the management of spontaneous intracerebral hemorrhage: a guideline for healthcare professionals from the American Heart Association/American Stroke Association. Stroke. 2015;46:2032–60. doi:10.1161/STR.0b013e3181ec611b.CrossRefPubMed Hemphill JC, Greenberg SM, Anderson C, Becker K, Bendok BR, Cushman M, et al. Guidelines for the management of spontaneous intracerebral hemorrhage: a guideline for healthcare professionals from the American Heart Association/American Stroke Association. Stroke. 2015;46:2032–60. doi:10.​1161/​STR.​0b013e3181ec611b​.CrossRefPubMed
4.
go back to reference Papo I, Janny P, Caruselli G, Luongo A. ICP time course in primary intracerebral hemorrhage. Intracranial Press. IV, 1979, p. 203–206. Papo I, Janny P, Caruselli G, Luongo A. ICP time course in primary intracerebral hemorrhage. Intracranial Press. IV, 1979, p. 203–206.
7.
go back to reference Beard DJ, McLeod DD, Logan CL, Murtha LA, Imtiaz MS, van Helden DF, et al. Intracranial pressure elevation reduces flow through collateral vessels and the penetrating arterioles they supply. A possible explanation for “collateral failure” and infarct expansion after ischemic stroke. J Cereb Blood Flow Metab. 2015;35:861–72. doi:10.1038/jcbfm.2015.2.CrossRefPubMedPubMedCentral Beard DJ, McLeod DD, Logan CL, Murtha LA, Imtiaz MS, van Helden DF, et al. Intracranial pressure elevation reduces flow through collateral vessels and the penetrating arterioles they supply. A possible explanation for “collateral failure” and infarct expansion after ischemic stroke. J Cereb Blood Flow Metab. 2015;35:861–72. doi:10.​1038/​jcbfm.​2015.​2.CrossRefPubMedPubMedCentral
10.
go back to reference Volpin L, Cervellini P, Colombo F, Zanusso M, Benedetti A. Spontaneous intra- cerebral hematomas: a new proposal about the usefulness and limits of surgical treatment. Neurosurgery. 1984;15:663–6.CrossRefPubMed Volpin L, Cervellini P, Colombo F, Zanusso M, Benedetti A. Spontaneous intra- cerebral hematomas: a new proposal about the usefulness and limits of surgical treatment. Neurosurgery. 1984;15:663–6.CrossRefPubMed
11.
go back to reference John RF, Colbourne F. Localized hypothermia reduces intracranial pressure following collagenase-induced intracerebral hemorrhage in rat. Brain Res. 2016;1633:27–36.CrossRefPubMed John RF, Colbourne F. Localized hypothermia reduces intracranial pressure following collagenase-induced intracerebral hemorrhage in rat. Brain Res. 2016;1633:27–36.CrossRefPubMed
18.
go back to reference Colbourne F, Corbett D. Delayed postischemic hypothermia: a six month survival study using behavioral and histological assessments of neuroprotection. J Neurosci. 1995;15:7250–60.PubMed Colbourne F, Corbett D. Delayed postischemic hypothermia: a six month survival study using behavioral and histological assessments of neuroprotection. J Neurosci. 1995;15:7250–60.PubMed
19.
go back to reference Namavar MR, Raminfard S, Jahromi ZV, Azari H. Effects of high-fat diet on the numerical density and number of neuronal cells and the volume of the mouse hypothalamus : a stereological study. Anat Cell Biol. 2012;45:178–84.CrossRefPubMedPubMedCentral Namavar MR, Raminfard S, Jahromi ZV, Azari H. Effects of high-fat diet on the numerical density and number of neuronal cells and the volume of the mouse hypothalamus : a stereological study. Anat Cell Biol. 2012;45:178–84.CrossRefPubMedPubMedCentral
20.
go back to reference Pover CM, Marshall HO, Coggeshall RE. A method for producing unbiased histograms of neuronal profile sizes. J Neurosci Methods. 1993;49:123–31.CrossRefPubMed Pover CM, Marshall HO, Coggeshall RE. A method for producing unbiased histograms of neuronal profile sizes. J Neurosci Methods. 1993;49:123–31.CrossRefPubMed
21.
go back to reference Felberg RA, Grotta JC, Shirzadi AL, Strong R, Narayana P, Hill-Felberg SJ, et al. Cell death in experimental intracerebral hemorrhage: the “black hole” model of hemorrhagic damage. Ann Neurol. 2002;51:517–24.CrossRefPubMed Felberg RA, Grotta JC, Shirzadi AL, Strong R, Narayana P, Hill-Felberg SJ, et al. Cell death in experimental intracerebral hemorrhage: the “black hole” model of hemorrhagic damage. Ann Neurol. 2002;51:517–24.CrossRefPubMed
22.
go back to reference Nakamura T, Keep RF, Hua Y, Nagao S, Hoff JT, Xi G. Iron-induced oxidative brain injury after experimental intracerebral hemorrhage. Acta Neurochir Suppl. 2006;96:194–8.CrossRefPubMed Nakamura T, Keep RF, Hua Y, Nagao S, Hoff JT, Xi G. Iron-induced oxidative brain injury after experimental intracerebral hemorrhage. Acta Neurochir Suppl. 2006;96:194–8.CrossRefPubMed
23.
24.
go back to reference Duning T, Kloska S, Steinsträter O, Kugel H, Heindel W, Knecht S. Dehydration confounds the assessment of brain atrophy. Neurology. 2005;64:548–50.CrossRefPubMed Duning T, Kloska S, Steinsträter O, Kugel H, Heindel W, Knecht S. Dehydration confounds the assessment of brain atrophy. Neurology. 2005;64:548–50.CrossRefPubMed
25.
go back to reference Langfitt TW. Pathophysiology of Increased ICP. Intracranial Press. 1972. p. 316–64. Langfitt TW. Pathophysiology of Increased ICP. Intracranial Press. 1972. p. 316–64.
26.
go back to reference Colbourne F, Sutherland GR, Auer RN. Electron microscopic evidence against apoptosis as the mechanism of neuronal death in global ischemia. J Neurosci. 1999;19:4200–10.PubMed Colbourne F, Sutherland GR, Auer RN. Electron microscopic evidence against apoptosis as the mechanism of neuronal death in global ischemia. J Neurosci. 1999;19:4200–10.PubMed
30.
go back to reference Strange K. Regulation of solute and water balance and cell volume in the central nervous system. J Am Soc Nephrol. 1992;3:12–27.PubMed Strange K. Regulation of solute and water balance and cell volume in the central nervous system. J Am Soc Nephrol. 1992;3:12–27.PubMed
31.
go back to reference Murtha LA, Mcleod DD, Pepperall D, Mccann SK, Beard DJ, Tomkins AJ, et al. Intracranial pressure elevation after ischemic stroke in rats: cerebral edema is not the only cause, and short-duration mild hypothermia is a highly effective preventive therapy. J Cereb Blood Flow Metab. 2015;24:592–600. doi:10.1038/jcbfm.2014.230.CrossRef Murtha LA, Mcleod DD, Pepperall D, Mccann SK, Beard DJ, Tomkins AJ, et al. Intracranial pressure elevation after ischemic stroke in rats: cerebral edema is not the only cause, and short-duration mild hypothermia is a highly effective preventive therapy. J Cereb Blood Flow Metab. 2015;24:592–600. doi:10.​1038/​jcbfm.​2014.​230.CrossRef
33.
go back to reference Murtha LA, Mcleod DD, Mccann SK, Pepperall D, Chung S, Levi CR, et al. Short-duration hypothermia after ischemic stroke prevents delayed intracranial pressure rise. Int J Stroke. 2014;9:553–9. doi:10.1111/ijs.12181.CrossRefPubMed Murtha LA, Mcleod DD, Mccann SK, Pepperall D, Chung S, Levi CR, et al. Short-duration hypothermia after ischemic stroke prevents delayed intracranial pressure rise. Int J Stroke. 2014;9:553–9. doi:10.​1111/​ijs.​12181.CrossRefPubMed
37.
go back to reference Orakcioglu B, Kentar MM, Schiebel P, Uozumi Y, Unterberg A, Sakowitz OW. Perihemorrhagic ischemia occurs in a volume-dependent manner as assessed by multimodal cerebral monitoring in a porcine model of intracerebral hemorrhage. Neurocrit Care. 2014;22:133–9. doi:10.1007/s12028-014-0027-3.CrossRef Orakcioglu B, Kentar MM, Schiebel P, Uozumi Y, Unterberg A, Sakowitz OW. Perihemorrhagic ischemia occurs in a volume-dependent manner as assessed by multimodal cerebral monitoring in a porcine model of intracerebral hemorrhage. Neurocrit Care. 2014;22:133–9. doi:10.​1007/​s12028-014-0027-3.CrossRef
43.
go back to reference Fan BJ, Kirkness C, Vicini P, Mitchell P. Intracranial pressure waveform morphology and intracranial adaptive capacity. Am J Crit Care. 2008;17:545–54.PubMed Fan BJ, Kirkness C, Vicini P, Mitchell P. Intracranial pressure waveform morphology and intracranial adaptive capacity. Am J Crit Care. 2008;17:545–54.PubMed
Metadata
Title
Evidence for Decreased Brain Parenchymal Volume After Large Intracerebral Hemorrhages: a Potential Mechanism Limiting Intracranial Pressure Rises
Authors
Michael R. Williamson
Frederick Colbourne
Publication date
01-08-2017
Publisher
Springer US
Published in
Translational Stroke Research / Issue 4/2017
Print ISSN: 1868-4483
Electronic ISSN: 1868-601X
DOI
https://doi.org/10.1007/s12975-017-0530-x

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