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PubMed · 42566092

SIRT1 in brain aging: molecular mechanisms and therapeutic potential of pharmacological and natural modulators.

Abstract

Aging is a multifactorial process affects different tissues and organs and is modulated by genetic and environmental factors. In aging, the frequency of DNA repair errors and genomic instability are augmented. Depletion of endogenous antioxidant capacity during aging promotes the development of oxidative stress which triggers oxidative stress-induced DNA injury. Brain aging is manifested by cognitive impairment and memory disorders. Development of neuronal senescence is the major pathway in the progression of brain aging. Silent information regulator sirtuin 1 (SIRT1) is a class III histone deacetylase plays a critical role in genomic stability during aging. SIRT1 is highly expressed in specific brain regions involved in energy expenditure and metabolic activity that is necessary for brain development and control of brain senescence. Therefore, SIRT1 may have neuroprotective effects against brain aging and related neurodegenerative diseases. This narrative review aims to critically evaluate the role of SIRT1 in brain aging and to summarize current evidence on compounds that directly or indirectly modulate SIRT1 activity, with a focus on their mechanistic pathways and potential therapeutic implications. Findings of the present review highlighted that SIRT1 activators such as resveratrol, metformin and statins have neuroprotective effects against brain aging by regulating inflammatory and oxidative stress disorders through modulation of downstream signaling pathways.

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BibTeXRIS

Esraa M Mosalam, Mahmoud S Abdallah, Ahmed R Gardouh, Eman Hamza, Mostafa M Bahaa, Mahmoud Nazih, Reham A Al-Dhelaan, Noha Kamal. 2026-08-07. SIRT1 in brain aging: molecular mechanisms and therapeutic potential of pharmacological and natural modulators.. https://doi.org/10.1007/s10522-026-10480-7

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