Viscoelastic extracellular matrix enhances epigenetic remodeling and cellular plasticity
Abstract
Abstract Extracellular matrices of living tissues exhibit viscoelastic properties, yet how these properties regulate chromatin and the epigenome remains unclear. Here, we show that viscoelastic substrates induce changes in nuclear architecture and epigenome, with more pronounced effects on softer surfaces. Fibroblasts on viscoelastic substrates display larger nuclei, lower chromatin compaction, and differential expression of distinct sets of genes related to the cytoskeleton and nuclear function, compared to those on elastic surfaces. Slow-relaxing viscoelastic substrates reduce lamin A/C expression and enhance nuclear remodeling. These structural changes are accompanied by a global increase in euchromatin marks and local increase in chromatin accessibility at cis -regulatory elements associated with neuronal and pluripotent genes. Consequently, viscoelastic substrates improve the reprogramming efficiency from fibroblasts into neurons and induced pluripotent stem cells. Collectively, our findings unravel the roles of matrix viscoelasticity in epigenetic regulation and cell reprogramming, with implications for designing smart materials for cell fate engineering.
Article Details
Authors (17)
Yifan Wu
Yang Song
Sorbonne Université, CNRS, Laboratoire de Chimie de la Matière Condensée de Paris (CMCP), 4 place Jussieu, F-75005 Paris, France
Jennifer Soto
Tyler Hoffman
Xiao Lin
School of Physical Sciences
Aaron Zhang
Siyu Chen
Jinan University ,
Ramzi N. Massad
Xiao Han
Dongping Qi
Kun-Wei Yeh
Zhiwei Fang
Department of Chemical and Biomolecular Engineering
Joon Eoh
Luo Gu
Amy C. Rowat
Zhen Gu
Song Li