Seizures cause sustained microvascular constriction associated with astrocytic and vascular smooth muscle Ca2+ recruitment
Teskey, G. C.; Tran, C. H. T.; George, A. G.; Gordon, G. R.
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Previously we showed that seizures result in a severe hypoperfusion/hypoxic attack that results in postictal memory and behavioral impairments (Farrell et al., 2016). However, neither postictal changes in microvasculature nor Ca2+ changes in key cell-types controlling blood perfusion have been visualized in vivo, leaving essential components of the underlying cellular mechanisms unclear. Here we use two-photon microvascular and Ca2+ imaging in awake mice to show that seizures result in a robust vasoconstriction of cortical penetrating arterioles, which temporally mirrors the prolonged postictal hypoxia. The vascular effect was dependent on cyclooxygenase-2, as pre-treatment with ibuprofen prevented postictal vasoconstriction. Seizures caused a rapid elevation in astrocyte endfoot Ca2+ that was confined to the seizure period. Vascular smooth muscle cells displayed a significant increase in Ca2+ both during and following seizures, lasting up to 75 minutes. The temporal activities of two cell-types within the neurovascular unit lead to seizure-induced hypoxia.\n\nHighlightsO_LISeizures lead to equivalent levels of postictal hypoxia in both male and female mice\nC_LIO_LICalcium elevation in astrocyte endfeet is confined to the seizure\nC_LIO_LIPostictal vasoconstriction in awake mice is mediated by cyclooxygenase-2\nC_LIO_LICalcium elevation in vascular smooth muscle cells is enduring and correlates with vasoconstriction.\nC_LI
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