Calcium channel blocking as a therapeutic strategy for Alzheimer's disease: the case for isradipine

Thimmappa S Anekonda1, Joseph F Quinn

  • 1Department of Neurology, Oregon Health and Science University, Portland, OR, USA. anekondt@ohsu.edu

Insights

Isradipine, an FDA-approved drug, shows promise in Alzheimer's disease research by reducing toxic beta-amyloid effects and improving brain cell function. Further studies are needed to understand its brain pharmacokinetics for potential clinical trials.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Gerontology

Background:

  • Alzheimer's disease (AD) is a leading cause of dementia with limited treatment options.
  • Current AD drug development targeting beta-amyloid production has yielded limited success.
  • Dysregulation of intracellular calcium by L-type calcium channels (Ca(v)1.2) is implicated in AD pathology.

Purpose of the Study:

  • To investigate the potential of isradipine, a Ca(v)1.2 blocker, in mitigating AD-related cellular dysfunctions.
  • To evaluate the effects of isradipine on beta-amyloid toxicity, tau pathology, and autophagy in an AD model.

Main Methods:

  • In vitro studies assessing isradipine's effect on beta-amyloid oligomer toxicity.
  • Administration of isradipine to a triple transgenic mouse model of Alzheimer's disease.
  • Assessment of isradipine's bioavailability, tau burden, and autophagy function in the brain.

Main Results:

  • Isradipine in vitro suppressed calcium influx and Ca(v)1.2 expression, reducing beta-amyloid oligomer toxicity.
  • Isradipine was well-tolerated in the triple transgenic AD mouse model.
  • Isradipine administration led to brain bioavailability, reduced tau burden, and improved autophagy.

Conclusions:

  • Isradipine demonstrates potential therapeutic effects against Alzheimer's disease pathology by targeting Ca(v)1.2 channels.
  • Modulation of Ca(v)1.2, tau accumulation, and autophagy pathways by isradipine warrants further investigation in clinical settings.
  • Understanding the brain pharmacokinetics of calcium channel blockers is crucial for future AD clinical trials.

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