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Updated: Sep 30, 2026

A11-positive β-amyloid Oligomer Preparation and Assessment Using Dot Blotting Analysis
Published on: May 22, 2018
Clemizole, a TRPC5 channel blocker rescues amyloid-β toxicity and cognitive impairment by modulating mitochondrial
Nishit Joshi1, Bhupesh Vaidya1, Priya Saha1
1Department of Pharmacology and Toxicology, National Institute of Pharmaceutical Education and Research, S.A.S. Nagar, Mohali, Punjab, India.
Abstract:
Amyloid β (Aβ)-induced neuronal dysfunction is a key pathological feature of Alzheimer's disease (AD), characterized by oxidative stress, mitochondrial impairment, and calcium dyshomeostasis. Transient receptor potential canonical 5 (TRPC5), a calcium-permeable cation channel, has been implicated in neurodegeneration, but its role in AD remains unclear. This study investigated TRPC5 involvement in Aβ-induced neurotoxicity and evaluated the neuroprotective potential of Clemizole, a TRPC5 blocker, in preclinical AD models. In SH-SY5Y cells, Aβ-induced neurotoxicity was assessed by measuring cell viability, intracellular and mitochondrial reactive oxygen species (ROS), mitochondrial membrane potential, and calcium influx. In rats, an intracerebroventricular (ICV) Aβ25-35 (10 μg) induced cognitive impairment model was used. Behavioral tests assessed cognitive function. Hippocampal TRPC5 expression and memory as well as calcium associated protein expressions (p-CaMKII, PSD-95, BDNF, calcineurin A) were analyzed, and acetylcholinesterase (AChE) activity was measured following 3 weeks of Clemizole (10 and 30 mg/kg) treatment. Aβ exposure reduced neuronal survival, increased ROS, disrupted mitochondrial membrane potential, and elevated calcium influx in vitro. Clemizole mitigated oxidative stress, restored mitochondrial function, and restored calcium homeostasis. In vivo, Aβ induced cognitive deficits and upregulated hippocampal TRPC5 expression in rats. Clemizole reduced TRPC5 levels, improved cognitive performance, enhanced p-CaMKII, PSD-95, and BDNF expression, decreased calcineurin A, and reduced AChE activity. TRPC5 contributes to Aβ-induced neurotoxicity and cognitive impairment, and Clemizole-mediated TRPC5 inhibition confers neuroprotection by restoring calcium balance and attenuating the decrease in memory-associated protein expression. These findings support TRPC5 as a potential therapeutic target in AD; however, further studies using a transgenic AD model are warranted before clinical translation.
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