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Isolation and Cannulation of Cerebral Parenchymal Arterioles
Published on: May 23, 2016
Continuous elevation of intracellular Ca2+ is essential for the development of cerebral vasospasm
Eiichi Tani1, Tsuyoshi Matsumoto
1Department of Neurosurgery, Hyogo College of Medicine, Nishinomiya, Hyogo 663-8501, Japan. toyome@nifty.com
Insights
Subarachnoid hemorrhage (SAH) causes cerebral vasospasm due to elevated intracellular calcium. Inhibiting calcium channels, calpain, MLCK, and Rho-kinase can reverse vasospasm, offering potential therapeutic strategies.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Subarachnoid hemorrhage (SAH)-induced cerebral vasospasm is a significant cause of neurological damage.
- Current treatments for cerebral vasospasm are limited, highlighting the need for mechanistic understanding.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying SAH-induced cerebral vasospasm using a canine model.
- To identify potential therapeutic targets for preventing or reversing cerebral vasospasm.
Main Methods:
- Utilized a two-hemorrhage canine model to study SAH-induced cerebral vasospasm.
- Investigated intracellular calcium (Ca2+) dynamics, including release from sarcoplasmic reticulum and extracellular influx.
- Examined the roles of mu-calpain, Ca2+/calmodulin-dependent myosin light chain kinase (MLCK), Rho-kinase, and protein kinase C (PKC).
- Assessed the effects of specific inhibitors (L-type Ca2+ channel blockers, ethylene-glycol-bis(beta-aminoethylether)N,N'-tetraacetic acid, genistein, calpeptin, ML-9, Y-27632) on vasospasm reversal.
Main Results:
- Cerebral vasospasm is characterized by sustained elevation of intracellular Ca2+ due to continuous activation of mu-calpain and MLCK.
- SAH-induced Ca2+ elevation involves enhanced release from sarcoplasmic reticulum and extracellular influx via tyrosine kinase pathways.
- Inhibitors of Ca2+ channels, calpain, MLCK, and Rho-kinase reversed vasospasm, indicating their crucial roles.
- Rho-kinase and PKC contribute to Ca2+-independent vasospasm by inhibiting myosin phosphatase.
- Alterations in thin filament-associated proteins (calponin, caldesmon) and degradation of contractile proteins occur during vasospasm.
Conclusions:
- SAH-induced cerebral vasospasm involves complex molecular pathways including sustained intracellular Ca2+ elevation and activation of multiple signaling cascades.
- Targeting Ca2+ influx, calpain, MLCK, Rho-kinase, and PKC pathways shows promise for therapeutic intervention in cerebral vasospasm.
- Preventing intracellular Ca2+ elevation is a key strategy to suppress the development of SAH-induced cerebral vasospasm.
Abstract:
Subarachnoid hemorrhage (SAH)-induced cerebral vasospasm causes serious neurological morbidity and mortality mainly because of the absence of effective treatment. Therefore, we reviewed the molecular mechanisms involved in the development of the cerebral vasospasm based on the experimental data in the two-hemorrhage canine model. The characteristic feature of vasospasm is a continuous elevation of intracellular Ca2+ levels in the cerebral artery, as indicated by the continuous activation of mu-calpain and Ca2+/calmodulin-dependent myosin light chain kinase (MLCK) phosphorylation of the myosin light chain. In contrast, KCl- or serotonin-induced vasocontraction displays a transient increase in Ca2+ concentration. The elevation of intracellular Ca2+ levels in vasospasm is induced through enhanced Ca2+ release from the sarcoplasmic reticulum and influx from the extracellular space by the activation of tyrosine kinase pathway and also probably by the proteolysis of Ca2+ channel by mu-calpain. Topical application of L-type Ca2+ channel blockers, ethylene-glycol-bis(beta-aminoethylether)N,N'-tetraacetic acid, genistein, calpeptin (a selective inhibitor of calpain), or ML-9 (a selective inhibitor of MLCK) induces the reversal of vasospasm probably as a result of a decrease in intracellular Ca2+ levels mainly due to a reduction of Ca2+ influx by these three inhibitors. Rho-kinase is also activated during vasospasm. It inhibits myosin phosphatase through phosphorylation at the myosin phosphatase target subunit 1 and also probably through phosphorylation of the 17-kDa smooth muscle-specific myosin phosphatase inhibitor (CPI-17) to bring about Ca2+-independent vasospasm. This interpretation is supported by the reversal of vasospasm with Y-27632, a specific inhibitor of Rho-kinase. Arachidonic acid produced during vasospasm might inhibit myosin phosphatase probably directly and via activation of Rho-kinase or atypical protein kinase C (PKC). PKC activated during vasospasm may inhibit myosin phosphates directly and by phosphorylating CPI-17. The protein levels of thin filament-associated proteins, calponin and caldesmon, are decreased in vasospasm, whereas their phosphorylation levels are increased. Both changes probably contribute to the enhancement of vascular smooth muscle contractility. Furthermore, contractile and cytoskeletal proteins appear to be degraded in vasospasm probably by proteolysis with mu-calpain, suggesting that degradation of the structural and functional mechanisms related to smooth muscle contraction occurs. Thus, the mechanisms responsible for the development of cerebral vasospasm are complicated, but the prevention of intracellular Ca2+ elevation induced by SAH may not activate MLCK, calpain and PKC to largely suppressing the development of vasospasm.
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