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Advanced Science· 2026Q1

Matrix Rigidity Mechanoprimes Microglia for Inflammation Through Cytoskeletal‐to‐Nuclear Signaling and 3D Spatio‐Epigenomic Remodeling

Yu Xuan Meng, Jaegeon Joo, Yumeng Li, Cheng Ji Li et al.

Short summary

Matrix rigidity primes microglia for amplified inflammation by remodeling the cytoskeleton, deforming the nucleus, and altering chromatin accessibility, leading to enhanced NF-κB activation and inflammatory gene expression.

AI-generated from the title and abstract; the full text is not read.

Key points

  • Matrix rigidity causes progressive actin cytoskeletal remodeling and nuclear deformation in microglia.
  • Rigidity redistributes chromatin accessibility, with focal gains at inflammation-associated loci.
  • Rigidity amplifies inflammatory responses via NF-κB activation and MRTF-A nuclear translocation.
  • Rigidity promotes long-range chromatin interactions linking distal cis-regulatory elements to inflammatory genes.

AI-generated from the title and abstract; the full text is not read.

Abstract

ABSTRACT Microglia play a pivotal role in modulating the pathophysiology of the central nervous system, including disease progression and injury repair. While the biochemical factors governing microglial activation are well understood, the impact of biophysical cues, such as extracellular matrix (ECM) mechanics, remains largely unexplored. Here, we demonstrate how matrix rigidity mechanoprimes microglia for inflammation through coordinated cytoskeletal‐to‐nuclear signaling and 3D spatio‐epigenomic remodeling. In response to rigid matrices, microglia undergo progressive actin cytoskeletal remodeling, morphological adaptation, and nuclear deformation. ATAC‐seq reveals that rigidity redistributes rather than globally increases chromatin accessibility: most differentially accessible regions lose accessibility, whereas a defined subset gains focal accessibility at inflammation‐associated loci, establishing a permissive state for subsequent activation. Upon LPS challenge, rigidity amplifies inflammatory responses through NF‐κB activation and cytoskeleton‐dependent MRTF‐A nuclear translocation. Integrating ChIP‐seq and Hi‐C identifies rigidity‐responsive cis ‐regulatory elements (mechanoCREs) and shows that rigidity promotes long‐range chromatin interactions linking distal mechanoCREs to inflammatory genes. Together, these findings establish ECM rigidity as a key regulator of microglial inflammation by coupling actin‐mediated mechanotransduction to chromatin accessibility and higher‐order genome organization, providing a mechanistic basis for mechanically amplified neuroinflammation.

The authors' abstract, as published at the source. Advanced Science, 2026 · DOI ↗

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Field: Neurology (Neuroscience)

NeurologyNeuroscience