表观遗传学
表观基因组
增强子
机械敏感通道
细胞生物学
生物
清脆的
细胞外基质
表型
表观遗传学
机械转化
基因表达调控
转录因子
基因
反式激活crRNA
基因表达
后生
机械生物学
遗传学
抄写(语言学)
核糖核酸
重编程
计算生物学
细胞
转录组
非编码RNA
基因组
作者
Brian D. Cosgrove,Lexi R. Bounds,Carson Key Taylor,Alan L Su,Anthony Rizzo,Alejandro Barrera,Tongyu Sun,Alexias Safi,Lingyun Song,Thomas J. Whitlow,Aleksandra Tata,Nahid Iglesias,Yarui Diao,Purushothama Rao Tata,Brenton D. Hoffman,Gregory E. Crawford,Charles A. Gersbach
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2025-09-25
卷期号:390 (6778): eadl1988-eadl1988
被引量:25
标识
DOI:10.1126/science.adl1988
摘要
Epigenetic control of gene expression and cellular phenotype is influenced by changes in the local microenvironment, yet how mechanical cues precisely influence epigenetic state to regulate transcription remains largely unmapped. In this study, we combined genome-wide epigenome profiling, epigenome editing, and phenotypic and single-cell RNA sequencing CRISPR screening to identify a class of genomic enhancers that responds to the mechanical microenvironment. These "mechanoenhancers" can be preferentially activated on either soft or stiff extracellular matrix contexts and regulate transcription to influence critical cell functions including apoptosis, adhesion, proliferation, and migration. Epigenetic editing of mechanoenhancers reprograms the cellular response to the mechanical microenvironment and modulates the activation of disease-related genes in lung fibroblasts from healthy and fibrotic donors. Epigenetic editing of mechanoenhancers holds potential for precise targeting of mechanically driven diseases.
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