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Updated: Oct 18, 2025

Deacetylation Assays to Unravel the Interplay between Sirtuins SIRT2 and Specific Protein-substrates
Published on: February 27, 2016
SIRT7-Induced PHF5A Decrotonylation Regulates Aging Progress Through Alternative Splicing-Mediated Downregulation of
Ai Qing Yu1, Jie Wang2, Shi Tao Jiang3
1Department of Clinical Laboratory, Hunan Provincial People's Hospital (The First-Affiliated Hospital of Hunan Normal University), Changsha, China.
Abstract:
Dysregulation of protein posttranslational modification (PTM) can lead to a variety of pathological processes, such as abnormal sperm development, malignant tumorigenesis, depression, and aging process. SIRT7 is a NAD+-dependent protein deacetylase. Besides known deacetylation, SIRT7 may also have the capacity to remove other acylation. However, the roles of SIRT7-induced other deacylation in aging are still largely unknown. Here, we found that the expression of SIRT7 was significantly increased in senescent fibroblasts and aged tissues. Knockdown or overexpression of SIRT7 can inhibit or promote fibroblast senescence. Knockdown of SIRT7 led to increased pan-lysine crotonylation (Kcr) levels in senescent fibroblasts. Using modern mass spectrometry (MS) technology, we identified 5,149 Kcr sites across 1,541 proteins in senescent fibroblasts, and providing the largest crotonylome dataset to date in senescent cells. Specifically, among the identified proteins, we found SIRT7 decrotonylated PHF5A, an alternative splicing (AS) factor, at K25. Decrotonylation of PHF5A K25 contributed to decreased CDK2 expression by retained intron (RI)-induced abnormal AS, thereby accelerating fibroblast senescence, and supporting a key role of PHF5A K25 decrotonylation in aging. Collectively, our data revealed the molecular mechanism of SIRT7-induced k25 decrotonylation of PHF5A regulating aging and provide new ideas and molecular targets for drug intervention in cellular aging and the treatment of aging-related diseases, and indicating that protein crotonylation has important implications in the regulation of aging progress.
Insights
SIRT7 protein levels rise in aging cells. SIRT7 removes crotonylation from PHF5A, a key factor in aging, by decrotonylating it at K25, thus regulating the aging process.
Area of Science:
- Biochemistry
- Molecular Biology
- Gerontology
Background:
- Dysregulation of protein posttranslational modifications (PTMs) is linked to aging and diseases.
- SIRT7, a NAD+-dependent deacetylase, may remove other acylations, but its role in aging via these modifications is unclear.
Purpose of the Study:
- Investigate the role of SIRT7 in cellular aging.
- Explore SIRT7's potential non-deacetylation functions in aging.
- Identify novel targets and mechanisms of SIRT7 in regulating aging.
Main Methods:
- Quantified SIRT7 expression in senescent fibroblasts and aged tissues.
- Utilized knockdown and overexpression of SIRT7 to assess its impact on fibroblast senescence.
- Employed mass spectrometry to identify protein crotonylation sites in senescent cells.
- Investigated the interaction between SIRT7, PHF5A, and CDK2 expression.
Main Results:
- SIRT7 expression is elevated in senescent fibroblasts and aged tissues.
- SIRT7 modulates fibroblast senescence; its knockdown increases pan-lysine crotonylation (Kcr).
- Identified 5,149 Kcr sites on 1,541 proteins, the largest crotonylome dataset in senescent cells.
- SIRT7 specifically decrotonylates PHF5A at K25, leading to abnormal alternative splicing and decreased CDK2 expression, accelerating senescence.
Conclusions:
- SIRT7-mediated decrotonylation of PHF5A at K25 is a novel mechanism regulating fibroblast aging.
- Protein crotonylation plays a significant role in the aging process.
- SIRT7 and PHF5A represent potential therapeutic targets for aging and related diseases.
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