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Mechanosensitive genomic enhancers potentiate the cellular response to matrix stiffness

Authors
Brian D. Cosgrove,Lexi R. Bounds
Carson Key Taylor,Alan L. Su,Anthony J. Rizzo,Alejandro Barrera,Gregory E. Crawford,Brenton D. Hoffman,Charles A. Gersbach,Brian Cosgrove,Andrew Su,Anthony Rizzo,Lazaros Lataniotis,Cormac Taylor,Alan Su,Gregory Crawford,Brenton Hoffman,M Beer
+16 authors
,Charles Gersbach
Published
Jan 10, 2024
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Abstract

Epigenetic control of cellular transcription and phenotype is influenced by changes in the cellular microenvironment, yet how mechanical cues from these microenvironments precisely influence epigenetic state to regulate transcription remains largely unmapped. Here, we combine genome-wide epigenome profiling, epigenome editing, and phenotypic and single-cell RNA-seq CRISPR screening to identify a new class of genomic enhancers that responds to the mechanical microenvironment. These 'mechanoenhancers' could be active on either soft or stiff extracellular matrix contexts, and regulated transcription to influence critical cell functions including apoptosis, mechanotransduction, proliferation, and migration. Epigenetic editing of mechanoenhancers on rigid materials tuned gene expression to levels observed on softer materials, thereby reprogramming the cellular response to the mechanical microenvironment. These editing approaches may enable the precise alteration of mechanically-driven disease states.

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