The thermodynamic state map of biomolecular condensates

Biomolecular condensates spatiotemporally regulate cellular biochemistry through liquid-liquid phase separation. In this Perspective, we refine the Condensate Code as a testable thermodynamic state map that integrates continuous cellular inputs, intrinsic molecular grammar and boundary conditions to govern measurable material states. Building on stickers-and-spacers and related grammar frameworks, we highlight a continuum from electrostatic coacervates to viscoelastic networks. We define active anti-grammar as an operational umbrella for localized repulsive or hydration-promoting effects that can counterbalance excessive cohesion when embedded in, modified within or recruited to dense phases. This view predicts measurable changes in partitioning, FRAP recovery, viscosity, aging and fibril-nucleation kinetics. Disruption of the code can drive pathogenic liquid-to-solid transitions and spatial uncoupling with organelle mechanotoxicity. We therefore conceptualize physical therapeutics as programmable macromolecular modulators that test whether localized anti-cohesive effects can remodel pathological material states while monitoring targeting, partitioning, oligomeric intermediates and safety.

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Publication Details

Journal
Communications Biology
Published
2026-09-29
DOI
https://doi.org/10.1038/s42003-026-11056-4
Primary Topic
Cellular Mechanics and Interactions
Type
article
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The thermodynamic state map of biomolecular condensates

Jinrong Min, Kan Sun, Xin Li, Liang Wang et al.
Communications Biology
Cellular Mechanics and Interactions
article

The thermodynamic state map of biomolecular condensates

Jinrong Min, Kan Sun, Xin Li, Liang Wang, Lingyun Jing, Jingyue Zhao, Yufeng Chang, Yaoyao Hou
article en

Abstract

Biomolecular condensates spatiotemporally regulate cellular biochemistry through liquid-liquid phase separation. In this Perspective, we refine the Condensate Code as a testable thermodynamic state map that integrates continuous cellular inputs, intrinsic molecular grammar and boundary conditions to govern measurable material states. Building on stickers-and-spacers and related grammar frameworks, we highlight a continuum from electrostatic coacervates to viscoelastic networks. We define active anti-grammar as an operational umbrella for localized repulsive or hydration-promoting effects that can counterbalance excessive cohesion when embedded in, modified within or recruited to dense phases. This view predicts measurable changes in partitioning, FRAP recovery, viscosity, aging and fibril-nucleation kinetics. Disruption of the code can drive pathogenic liquid-to-solid transitions and spatial uncoupling with organelle mechanotoxicity. We therefore conceptualize physical therapeutics as programmable macromolecular modulators that test whether localized anti-cohesive effects can remodel pathological material states while monitoring targeting, partitioning, oligomeric intermediates and safety.

Communications BiologyVol. 9(1)
Central China Normal University (CN), Huazhong University of Science and Technology (CN)
Quality Education
Openalex Percentile: Top 15%
Cellular Mechanics and Interactions
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The thermodynamic state map of biomolecular condensates — Jinrong Min, Kan Sun, et al. · Communications Biology (2026) | TGRS Research Map | TGRS