Subarachnoid Hemorrhage, Spreading Depolarizations and Impaired Neurovascular Coupling
Author(s) -
Masayo Koide,
Inna Sukhotinsky,
Cenk Ayata,
George C. Wellman
Publication year - 2013
Publication title -
stroke research and treatment
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.939
H-Index - 34
eISSN - 2090-8105
pISSN - 2042-0056
DOI - 10.1155/2013/819340
Subject(s) - neurovascular bundle , medicine , cerebral blood flow , ischemia , subarachnoid hemorrhage , neuroscience , premovement neuronal activity , cerebral circulation , cardiology , anesthesia , anatomy , psychology
Aneurysmal subarachnoid hemorrhage (SAH) has devastating consequences on brain function including profound effects on communication between neurons and the vasculature leading to cerebral ischemia. Physiologically, neurovascular coupling represents a focal increase in cerebral blood flow to meet increased metabolic demand of neurons within active regions of the brain. Neurovascular coupling is an ongoing process involving coordinated activity of the neurovascular unit—neurons, astrocytes, and parenchymal arterioles. Neuronal activity can also influence cerebral blood flow on a larger scale. Spreading depolarizations (SD) are self-propagating waves of neuronal depolarization and are observed during migraine, traumatic brain injury, and stroke. Typically, SD is associated with increased cerebral blood flow. Emerging evidence indicates that SAH causes inversion of neurovascular communication on both the local and global level. In contrast to other events causing SD, SAH-induced SD decreases rather than increases cerebral blood flow. Further, at the level of the neurovascular unit, SAH causes an inversion of neurovascular coupling from vasodilation to vasoconstriction. Global ischemia can also adversely affect the neurovascular response. Here, we summarize current knowledge regarding the impact of SAH and global ischemia on neurovascular communication. A mechanistic understanding of these events should provide novel strategies to treat these neurovascular disorders.
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