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.

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