✓ Temporary intracranial arterial occlusion is often utilized during the surgical treatment of intracranial aneurysms. Although numerous experimental studies have suggested that repetitive, brief periods of global ischemia cause more severe cerebral injury than a similar single period of global ischemia, this issue has not been extensively studied in relation to focal ischemia. It remains controversial whether it is safer to use brief periods of interrupted, temporary occlusion separated by reperfusion periods, or a more prolonged, single temporary occlusion. This question is addressed in studies on a rabbit model of transient, focal cerebral ischemia.
Sixteen anesthetized rabbits underwent transorbital occlusion of the left internal carotid, middle cerebral, and anterior cerebral arteries, with one of two paradigms: uninterrupted occlusion (1 hour of temporary occlusion followed by 5 hours of reperfusion in eight rabbits), or interrupted occlusion (three separate 20-minute periods of occlusion, with 10 minutes of reperfusion between occlusions, followed by 4 hours, 40 minutes of reperfusion in eight rabbits). Histopathological evaluation for ischemic neuronal damage and magnetic resonance imaging studies for ischemic edema were conducted 6 hours after the initial arterial occlusion.
The animals in the interrupted, repeated occlusion group showed a 59% decrease in the area of cortical ischemic neuronal damage (mean ± standard error of the mean 10.0% ± 1.7%) compared with the uninterrupted occlusion group (24.4% ± 5%, p = 0.016). There was no difference between the groups in the extent of striatal ischemic damage or area of ischemic edema. These results suggest that interrupted, repeated focal ischemia causes less cortical ischemic injury than uninterrupted transient ischemia of a similar total duration. Although caution should be exercised in extrapolating from these results to the clinical situation, they may have important implications for temporary arterial occlusion during intracranial surgery.
Alger JR, , Brunetti A, & Nagashima G, et al: Assessment of postischemic cerebral energy metabolism in cat by 31P NMR: the cumulative effects of secondary hypoxia and ischemia. J Cereb Blood Flow Metab 9:506–514, 1989 Alger JR, Brunetti A, Nagashima G, et al: Assessment of postischemic cerebral energy metabolism in cat by 31P NMR: the cumulative effects of secondary hypoxia and ischemia. J Cereb Blood Flow Metab 9:506–514, 1989
Araki T, , Kato H, & Kogure K: Neuronal damage and calcium accumulation following repeated brief cerebral ischemia in the gerbil. Brain Res 528:114–122, 1990 Araki T, Kato H, Kogure K: Neuronal damage and calcium accumulation following repeated brief cerebral ischemia in the gerbil. Brain Res 528:114–122, 1990
Brant-Zawadzki M, , Pereira B, & Weinstein P, et al: MR imaging of acute experimental ischemia in rats. AJNR 7:7–11, 1986 Brant-Zawadzki M, Pereira B, Weinstein P, et al: MR imaging of acute experimental ischemia in rats. AJNR 7:7–11, 1986
Brierley JB: Pathology of cerebral ischemia, in McDowell FH, & Brennan RW (eds): Cerebral Vascular Diseases. New York: Grune & Stratton, 1973, pp 59–75 Brierley JB: Pathology of cerebral ischemia, in McDowell FH, Brennan RW (eds): Cerebral Vascular Diseases. New York: Grune & Stratton, 1973, pp 59–75
DeLaPaz R, , Shibata D, & Steinberg GK, et al: Acute cerebral ischemia in rabbits: correlation between MR and histopathology. AJNR 12:89–95, 1991 DeLaPaz R, Shibata D, Steinberg GK, et al: Acute cerebral ischemia in rabbits: correlation between MR and histopathology. AJNR 12:89–95, 1991
Deluga K, , Plötz FB, & Betz AL: Effect of indomethacin on edema following single and repetitive cerebral ischemia in the gerbil. Stroke 22:1259–1264, 1991 Deluga K, Plötz FB, Betz AL: Effect of indomethacin on edema following single and repetitive cerebral ischemia in the gerbil. Stroke 22:1259–1264, 1991
Garcia JH, & Kamijyo Y: Cerebral infarction. Evolution of histopathological changes after occlusion of a middle cerebral artery in primates. J Neuropathol Exp Neurol 33:408–121, 1974 Garcia JH, Kamijyo Y: Cerebral infarction. Evolution of histopathological changes after occlusion of a middle cerebral artery in primates. J Neuropathol Exp Neurol 33:408–121, 1974
Ginsberg MD, , Graham DI, & Welsh FA, et al: Diffuse cerebral ischemia in the cat: III. Neuropathological sequelae of severe ischemia. Ann Neurol 5:350–358, 1979 Ginsberg MD, Graham DI, Welsh FA, et al: Diffuse cerebral ischemia in the cat: III. Neuropathological sequelae of severe ischemia. Ann Neurol 5:350–358, 1979
Goldman MS, , Anderson RE, & Meyer FB: Effects of intermittent reperfusion during temporal focal ischemia. J Neurosurg 77:911–916, 1992 Goldman MS, Anderson RE, Meyer FB: Effects of intermittent reperfusion during temporal focal ischemia. J Neurosurg 77:911–916, 1992
Inoue T, , Kato H, & Araki T, et al: Emphasized selective vulnerability after repeated nonlethal cerebral ischemic insults in rats. Stroke 23:739–745, 1992 Inoue T, Kato H, Araki T, et al: Emphasized selective vulnerability after repeated nonlethal cerebral ischemic insults in rats. Stroke 23:739–745, 1992
Jabre A, & Symon L: Temporary vascular occlusion during aneurysm surgery. Surg Neurol 27:47–93, 1987 Jabre A, Symon L: Temporary vascular occlusion during aneurysm surgery. Surg Neurol 27:47–93, 1987
Kato H, & Kogure K: Neuronal damage following non-lethal but repeated cerebral ischemia in the gerbil. Acta Neuropathol 79:494–500, 1990 Kato H, Kogure K: Neuronal damage following non-lethal but repeated cerebral ischemia in the gerbil. Acta Neuropathol 79:494–500, 1990
Kato H, , Araki T, & Hara H, et al: Sequential changes in muscarinic acetylcholine adenosine A, and calcium antagonist binding sites in the gerbil hippocampus following repeated brief ischemia. Brain Res 553:33–38, 1991 Kato H, Araki T, Hara H, et al: Sequential changes in muscarinic acetylcholine adenosine A, and calcium antagonist binding sites in the gerbil hippocampus following repeated brief ischemia. Brain Res 553:33–38, 1991
Kato H, , Liu Y, & Araki T, et al: Temporal profile of the effects of pretreatment with brief cerebral ischemia on the neuronal damage following secondary ischemic insult in the gerbil: cumulative damage and protective effects. Brain Res 553:238–242, 1991 Kato H, Liu Y, Araki T, et al: Temporal profile of the effects of pretreatment with brief cerebral ischemia on the neuronal damage following secondary ischemic insult in the gerbil: cumulative damage and protective effects. Brain Res 553:238–242, 1991
Kimura R, , Okada T, & Shiino A, et al: Diffusion-weighted MR imaging of acute focal cerebral ischemia model in rats. J Cereb Blood Flow Metab 13:S301, 1993 (Abstract) Kimura R, Okada T, Shiino A, et al: Diffusion-weighted MR imaging of acute focal cerebral ischemia model in rats. J Cereb Blood Flow Metab 13:S301, 1993 (Abstract)
Kitagawa K, , Matsumoto M, & Tagaya M, et al: “Ischemic tolerance” phenomenon found in the brain. Brain Res 528:21–24, 1990 Kitagawa K, Matsumoto M, Tagaya M, et al: “Ischemic tolerance” phenomenon found in the brain. Brain Res 528:21–24, 1990
Kuroiwa T, , Shibutani M, & Okeda R: Nonhyperemic blood flow restoration and brain edema in experimental focal cerebral ischemia. J Neurosurg 70:73–80, 1989 Kuroiwa T, Shibutani M, Okeda R: Nonhyperemic blood flow restoration and brain edema in experimental focal cerebral ischemia. J Neurosurg 70:73–80, 1989
Lin B, , Globus MYT, & Dietrich WD, et al: Differing neurochemical and morphological sequelae of global ischemia: comparison of single- and multiple-insult paradigms. J Neurochem 59:2213–2223, 1992 Lin B, Globus MYT, Dietrich WD, et al: Differing neurochemical and morphological sequelae of global ischemia: comparison of single- and multiple-insult paradigms. J Neurochem 59:2213–2223, 1992
Maier C, , Steinberg GK, & Sun GH, et al: Neuroprotection by the alpha2-adrenoreceptor agonist dexmedetomidine in a focal model of cerebral ischemia. Anesthesiology 79:306–312, 1993 Maier C, Steinberg GK, Sun GH, et al: Neuroprotection by the alpha2-adrenoreceptor agonist dexmedetomidine in a focal model of cerebral ischemia. Anesthesiology 79:306–312, 1993
Matsumoto T, , Obrenovitch TP, & Parkinson NA, et al: Cortical activity ionic homeostasis, and acidosis during rat brain repetitive ischemia. Stroke 21:1192–1198, 1990 Matsumoto T, Obrenovitch TP, Parkinson NA, et al: Cortical activity ionic homeostasis, and acidosis during rat brain repetitive ischemia. Stroke 21:1192–1198, 1990
Mrsulja BB, , Lust WD, & Mrsulja BJ, et al: Effect of repeated cerebral ischemia on metabolites and metabolic rate in gerbil cortex. Brain Res 119:480–486, 1977 Mrsulja BB, Lust WD, Mrsulja BJ, et al: Effect of repeated cerebral ischemia on metabolites and metabolic rate in gerbil cortex. Brain Res 119:480–486, 1977
Nakano S, , Kato H, & Kogure K: Neuronal damage in the rat hippocampus in a new model of repeated reversible transient cerebral ischemia. Brain Res 490:178–180, 1989 Nakano S, Kato H, Kogure K: Neuronal damage in the rat hippocampus in a new model of repeated reversible transient cerebral ischemia. Brain Res 490:178–180, 1989
Nedergaard M: Transient focal ischemia in hyperglycemic rats is associated with increased cerebral infarction. Brain Res 408:79–85, 1987 Nedergaard M: Transient focal ischemia in hyperglycemic rats is associated with increased cerebral infarction. Brain Res 408:79–85, 1987
Nowak TS Jr, , Tomida S, & Pluta R, et al: Cumulative effect of repeated ischemia on brain edema in the gerbil. Biochemical and physiological correlates of repeated ischemic insults. Adv Neurol 52:1–9, 1990 Nowak TS Jr, Tomida S, Pluta R, et al: Cumulative effect of repeated ischemia on brain edema in the gerbil. Biochemical and physiological correlates of repeated ischemic insults. Adv Neurol 52:1–9, 1990
Ogawa A, , Sato H, & Sakurai Y, et al: Limitation of temporary vascular occlusion during aneurysm surgery. Study by intraoperative monitoring of cortical blood flow. Surg Neurol 36:453–157, 1991 Ogawa A, Sato H, Sakurai Y, et al: Limitation of temporary vascular occlusion during aneurysm surgery. Study by intraoperative monitoring of cortical blood flow. Surg Neurol 36:453–157, 1991
Ohati M, , Tranmer BI, & Hashi K: Single versus repetitive ischemic insults in the rat model of focal cerebral ischemia. J Cereb Blood Flow Metab 13:S671, 1993 (Abstract) Ohati M, Tranmer BI, Hashi K: Single versus repetitive ischemic insults in the rat model of focal cerebral ischemia. J Cereb Blood Flow Metab 13:S671, 1993 (Abstract)
Paschen W, , Widmann R, & Weber C: Changes in regional polyamine profiles in rat brains after transient cerebral ischemia (single versus repetitive ischemia): evidence for release of polyamines from injured neurons. Neurosci Lett 135:121–124, 1992 Paschen W, Widmann R, Weber C: Changes in regional polyamine profiles in rat brains after transient cerebral ischemia (single versus repetitive ischemia): evidence for release of polyamines from injured neurons. Neurosci Lett 135:121–124, 1992
Peerless SJ, & Drake CG: Management of aneurysms of the posterior circulation, in Youmans JR (ed): Neurological Surgery, ed 3. Philadelphia: WB Saunders, 1990, pp 1764–1806 Peerless SJ, Drake CG: Management of aneurysms of the posterior circulation, in Youmans JR (ed): Neurological Surgery, ed 3. Philadelphia: WB Saunders, 1990, pp 1764–1806
Samson DS, , Batjer HH, & Bowman G, et al: A clinical study of the parameters and effects of temporary arterial occlusion in the management of intracranial aneurysms. Neurosurgery (In press, 1994) Samson DS, Batjer HH, Bowman G, et al: A clinical study of the parameters and effects of temporary arterial occlusion in the management of intracranial aneurysms. Neurosurgery (In press, 1994)
Siesjö BK: Pathophysiology and treatment of focal cerebral ischemia. Part I: pathophysiology. J Neurosurg 77:169–184, 1992 Siesjö BK: Pathophysiology and treatment of focal cerebral ischemia. Part I: pathophysiology. J Neurosurg 77:169–184, 1992
Siesjö BK: Pathophysiology and treatment of focal cerebral ischemia. Part II: mechanisms of damage and treatment. J Neurosurg 77:337–354, 1992 Siesjö BK: Pathophysiology and treatment of focal cerebral ischemia. Part II: mechanisms of damage and treatment. J Neurosurg 77:337–354, 1992
Steinberg GK, , George CP, & DeLaPaz R, et al: Dextromethorphan protects against cerebral injury following transient focal ischemia in rabbits. Stroke 19:1112–1118, 1988 Steinberg GK, George CP, DeLaPaz R, et al: Dextromethorphan protects against cerebral injury following transient focal ischemia in rabbits. Stroke 19:1112–1118, 1988
Steinberg GK, , Kunis D, & Saleh J, et al: Protection after transient focal cerebral ischemia by the n-methyl-d-aspartate antagonist dextrorphan is dependent upon plasma and brain levels. J Cereb Blood Flow Metab 11:1015–1024, 1991 Steinberg GK, Kunis D, Saleh J, et al: Protection after transient focal cerebral ischemia by the n-methyl-d-aspartate antagonist dextrorphan is dependent upon plasma and brain levels. J Cereb Blood Flow Metab 11:1015–1024, 1991
Suzuki J, , Kwak R, & Okudairo Y: The safe time limit of temporary clamping of cerebral arteries in the direct surgical treatment of intracranial aneurysms under moderate hypothermia. Tohoku J Exp Med 127:1–7, 1979 Suzuki J, Kwak R, Okudairo Y: The safe time limit of temporary clamping of cerebral arteries in the direct surgical treatment of intracranial aneurysms under moderate hypothermia. Tohoku J Exp Med 127:1–7, 1979
Tomida S, , Nowak TS Jr, & Vass K, et al: Experimental model for repetitive ischemic attacks in the gerbil: the cumulative effect of repeated ischemic insults. J Cereb Blood Flow Metab 7:773–782, 1987 Tomida S, Nowak TS Jr, Vass K, et al: Experimental model for repetitive ischemic attacks in the gerbil: the cumulative effect of repeated ischemic insults. J Cereb Blood Flow Metab 7:773–782, 1987
Ueda Y, , Obrenovitch TP, & Lok SY, et al: Changes in extracellular glutamate concentration produced in the rat striatum by repeated ischemia. Stroke 23:1125–1131, 1992 Ueda Y, Obrenovitch TP, Lok SY, et al: Changes in extracellular glutamate concentration produced in the rat striatum by repeated ischemia. Stroke 23:1125–1131, 1992
Widmann R, , Weber C, & Bonnekoh P, et al: Neuronal damage after repeated 5 minutes of ischemia in the gerbil is preceded by prolonged impairment of protein metabolism. J Cereb Blood Flow Metab 12:425–133, 1992 Widmann R, Weber C, Bonnekoh P, et al: Neuronal damage after repeated 5 minutes of ischemia in the gerbil is preceded by prolonged impairment of protein metabolism. J Cereb Blood Flow Metab 12:425–133, 1992
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