CAPNS1 restoration partially alleviates mitochondrial dysfunction and synaptic deficits in Alzheimer's disease through the Ca2⁺-CaMKIIβ-MAPK-PGC-1α axis.
Alzheimer's disease (AD), a progressive neurodegenerative disorder characterized by brain atrophy and cognitive decline. While the amyloid cascade hypothesis remains the dominant framework, accumulating evidence indicates that mitochondrial dysfunction critically contributes to AD progression. Although improving mitochondrial function has been shown to rescue cognitive deficits in AD models, the underlying molecular mechanisms remain elusive. In this study, we identified a significant reduction in calpain small subunit 1 (CAPNS1) expression in both AD patient samples and male transgenic mouse models. Decreased CAPNS1 levels were strongly correlated with mitochondrial ultrastructural damage, reduced mitochondrial DNA (mtDNA) copy number, and progressive synaptic loss. Mechanistically, we found that CAPNS1 positively regulated mtDNA transcription and mitochondrial gene expression, and pharmacological data suggested the involvement of the Ca2⁺-CaMKIIβ-MAPK-PGC-1α signaling axis, a master pathway governing mitochondrial biogenesis and respiratory capacity. This activation subsequently restored cellular ATP production and reduced mitochondrial reactive oxygen species accumulation. Importantly, neuronal-specific CAPNS1 upregulation in APP/PS1 transgenic mice markedly improved mitochondrial cristae integrity, reversed hippocampal long-term potentiation deficits, increased dendritic spine density, and partially alleviated spatial memory deficits in behavioral tests. We noted that loss-of-function experiments (e.g., CAPNS1 knockdown or knockout) were not performed in this study, and the proposed Ca2⁺-CaMKIIβ-MAPK-PGC-1α axis should therefore be interpreted as a suggestive working model requiring further validation. Collectively, our findings indicate that CAPNS1 serves as a key regulator of mitochondrial function. By linking Ca2⁺ signaling to mitochondrial gene expression and synaptic integrity, CAPNS1 represents a promising therapeutic target for ameliorating synaptic loss and cognitive decline in AD.
Alzheimer's disease (AD) is characterized by amyloid-beta (Aβ) deposition, yet the mechanisms underlying Aβ-induced neuronal damage remain elusive. Emerging evidence implicates ferroptosis, an iron-dependent form of regulated cell death, in AD pathology. We hypothesized that dysfunction of the Nrf2 pathway critically l...
Progressive mitochondrial dysfunction coupled with calcium dyshomeostasis is a hallmark of aging and neurodegenerative conditions, yet the molecular links to cognitive decline remain unclear. Moreover, although sex differences in susceptibility to neurodegeneration are well recognized, their molecular basis remains poo...
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Research in Alzheimer’s disease (AD) has been primarily focused on the genetic causes and therapies
to target the amyloid‑β (Aβ) plaques and neurofibrillary tau tangles (NFTs). However, a growing
body of research suggests that imbalances and subsequent breakdown in mitochondrial calcium (Ca²⁺)
regulation plays a centra...
Sahishnu Saha· American Journal of Student...· 0 citations
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A organelle-centered perspective will clarify AD pathogenesis and help guide the development of next-generation neuroprotective therapies, and highlight the essential requirements for building one, centered on synaptic mitochondrial bioenergetics and quality control.
Yu-Xin Wang, Wei-Dong Wu, Li-Shuang Yan et al.· Frontiers in Pharmacology· 0 citations
Alzheimer's disease (AD) is a progressive neurodegenerative disorder characterized by amyloid-β (Aβ) plaques, tau pathology, mitochondrial dysfunction, oxidative stress, neuroinflammation, and cerebral hypoperfusion. Emerging evidence suggests that dysregulation of the hypoxia-inducible factor-1 alpha (HIF-1α)-mitochon...
R. Elavarasi, P. A, V. R et al.· International journal of che...· 0 citations
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