Chromatin decompaction within the nucleus increases plasma membrane tension promoting NETosis execution, independently of transcription.

Cabral, Aidan T; Sawant, Manasi; Kang, Minwoo; Xie, Liangqi; Thiam, Hawa Racine · Nat Commun · 2026

basic_science · Level V

Where this comes from

Abstract

Chromatin organizes DNA and regulates nuclear mechanics. However, whether and how chromatin regulates whole-cell mechanics and functions independently of transcription is largely unknown. Here, leveraging transcription-independent NETosis, we show that chromatin decompaction within the nucleus increases plasma membrane tension and cell volume. Mechanistically, we show that chromatin accessibility gradually increases and chromatin binding proteins (CBPs) H1, HP1α, and H3 differentially dissociate from chromatin as it decompacts during NETosis. We posit that dissociated CBPs become osmolytes that alter cellular osmolarity. Consistently, tuning extracellular osmolarity or disrupting regulators of membrane tension and cell volume (mTORC1/2, NHEs, or VRAC ion channels) alters plasma membrane rupture and NETosis execution. In non-NETing U2OS cells, decompacting chromatin increases membrane tension, independently of the cytoskeleton, indicating a causal relationship between chromatin organization and membrane tension. This work shows chromatin as a regulator of whole-cell mechanics, broadening our understanding of the non-genetic roles of chromatin in cell pathophysiology.

Medical subject headings