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Kashuk, E.

Publications and source records attributed to Kashuk, E..

2 recordsLinked to original sources

A systematic evaluation of SIRT6 as transcriptomic biomarker of aging

SIRT6 is a NAD+-dependent sirtuin that plays central roles in chromatin regulation, DNA repair, telomere maintenance, metabolic homeostasis, and inflammatory control. Although SIRT6 have long been implicated in aging because of its association with several hallmarks of aging, the available evidence remains largely context-dependent and mechanistic, limiting the interpretation of SIRT6 as a robust and evolutionarily conserved biomarker of aging. To comprehensively investigate the role of SIRT6 as an aging biomarker, we established SIRT6.db, a multi-species transcriptomic resource that integrates SIRT6-targeted perturbation experiments across diverse biological systems and organisms form all available SIRT6-related publications collected via a large-scale textual analysis of the SIRT6 literature using topic modeling. Based on this database, we identified both species-specific and evolutionarily conserved transcriptional and functional signatures associated with SIRT6 perturbation and established their relevance to hallmarks of aging. We showed that SIRT6 expression is generally stable during normal aging, but becomes dysregulated in Alzheimer's disease in cell type and stage-specific manner, highlighting the context dependence of its potential as a transcriptomic biomarker of aging.

bioinformatics↗

The Divergent 3D Genome Landscapes of Aging and Neurodegenerative mouse models

Chromatin structure is essential for gene regulation and genome stability, and neurons must preserve their 3D genome organization throughout life. This structure gradually deteriorates with aging and is further disrupted in neurodegenerative diseases. To investigate whether aging and neurodegeneration share early chromatin changes or diverge, we performed Hi-C on cortical neurons from adult, aged, and brain-specific SIRT6-knockout (S6-KO) mice, and compared them to the CK-p25 Alzheimers disease model results stratified by {gamma}H2AX levels. All models showed early features such as weakened interactions between chromosomes in expanded nuclei, A-to-B compartment shifts, and loss of architectural loops. However, aged neurons retained TAD prominence, short-range interactions, and enhancer-promoter loops, while pathological models showed reduced TAD prominence, shorter loops, and disorganized A-B mixing. These changes correlate with increased DNA damage. Our findings suggest that aging represents a "primed" state, where chromatin regulation begins to erode, but further stressors like DNA damage are associated with progression toward neurodegenerative breakdown.

molecular biology↗