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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
Abstract:
Alzheimer's disease is the most devastating neurodegenerative disorder in the elderly, yet treatment options are severely limited. The drug development effort to modify Alzheimer's disease pathology by intervention at beta amyloid production sites has been largely ineffective or inconclusive. The greatest challenge has been to identify and define downstream mechanisms reliably predictive of clinical symptoms. Beta amyloid accumulation leads to dysregulation of intracellular calcium by plasma membrane L-type calcium channels located on neuronal somatodendrites and axons in the hippocampus and cortex. Paradoxically, L-type calcium channel subtype Ca(v)1.2 also promotes synaptic plasticity and spatial memory. Increased intracellular calcium modulates amyloid precursor protein processing and affects multiple downstream pathways including increased hyperphosphorylated tau and suppression of autophagy. Isradipine is a Federal Drug Administration-approved dihydropyridine calcium channel blocker that binds selectively to Ca(v)1.2 in the hippocampus. Our studies have shown that isradipine in vitro attenuates beta amyloid oligomer toxicity by suppressing calcium influx into cytoplasm and by suppressing Ca(v)1.2 expression. We have previously shown that administration of isradipine to triple transgenic animal model for Alzheimer's disease was well-tolerated. Our results further suggest that isradipine became bioavailable, lowered tau burden, and improved autophagy function in the brain. A better understanding of brain pharmacokinetics of calcium channel blockers will be critical for designing new experiments with appropriate drug doses in any future clinical trials for Alzheimer's disease. This review highlights the importance of Ca(v)1.2 channel overexpression, the accumulation of hyperphosphorylated tau and suppression of autophagy in Alzheimer's disease and modulation of this pathway by isradipine.
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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