Deciphering the dynamics: Exploring the impact of mechanical forces on histone acetylation

Author:

Cai Jingyi1ORCID,Deng Yudi1ORCID,Min Ziyang1ORCID,Li Chaoyuan2ORCID,Zhao Zhihe1ORCID,Jing Dian34567ORCID

Affiliation:

1. State Key Laboratory of Oral Diseases & National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology Sichuan University Chengdu China

2. Department of Implantology, School and Hospital of Stomatology, Shanghai Engineering Research Center of Tooth Restoration and Regeneration Tongji University Shanghai China

3. Department of Orthodontics, Shanghai Ninth People's Hospital Shanghai Jiao Tong University School of Medicine Shanghai China

4. College of Stomatology Shanghai Jiao Tong University Shanghai China

5. National Center for Stomatology Shanghai China

6. National Clinical Research Center for Oral Diseases Shanghai China

7. Shanghai Key Laboratory of Stomatology Shanghai China

Abstract

AbstractLiving cells navigate a complex landscape of mechanical cues that influence their behavior and fate, originating from both internal and external sources. At the molecular level, the translation of these physical stimuli into cellular responses relies on the intricate coordination of mechanosensors and transducers, ultimately impacting chromatin compaction and gene expression. Notably, epigenetic modifications on histone tails govern the accessibility of gene‐regulatory sites, thereby regulating gene expression. Among these modifications, histone acetylation emerges as particularly responsive to the mechanical microenvironment, exerting significant control over cellular activities. However, the precise role of histone acetylation in mechanosensing and transduction remains elusive due to the complexity of the acetylation network. To address this gap, our aim is to systematically explore the key regulators of histone acetylation and their multifaceted roles in response to biomechanical stimuli. In this review, we initially introduce the ubiquitous force experienced by cells and then explore the dynamic alterations in histone acetylation and its associated co‐factors, including HDACs, HATs, and acetyl‐CoA, in response to these biomechanical cues. Furthermore, we delve into the intricate interactions between histone acetylation and mechanosensors/mechanotransducers, offering a comprehensive analysis. Ultimately, this review aims to provide a holistic understanding of the nuanced interplay between histone acetylation and mechanical forces within an academic framework.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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