ReviewBiophysics reviews2025
The mechanobiology of biomolecular condensates.
Review in Biophysics reviews, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers.
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Who cites it
13 citing papers in PubMed.
- Biomolecular coacervation-mediated materials: Phase states, phase transitions, and biomedical applications.Bioactive materials · 2027Review
- Progress toward linking single-molecule behavior and condensate material properties.Current opinion in structural biology · 2026Review
- Lipid-Mediated DNA-Protein Coupling Reinforces the Mechanics of HP1α-DNA Condensates.Small science · 2026Article
- Backbone Hydrogen Bonding as a Determinant of Condensate Material States.Journal of the American Chemical Society · 2026Article
- Solution-Tunable Interfacial Interaction Landscape Governs Anomalous Nanoparticle Diffusion in Liquid-Phase Electron Microscopy.ACS nano · 2026Article
- Elastic enhancer network tunes equilibrium thermodynamics of liquid liquid phase separation in super enhancers.iScience · 2026Article
- Intrinsic Disorder as a Biomimetic Design Paradigm.Biomimetics (Basel, Switzerland) · 2026Article
- Partition Coefficients Reveal Changes in Properties of Low-Contrast Biomolecular Condensates.bioRxiv : the preprint server for biology · 2026Article
- Molecular origins of viscoelasticity in biomolecular condensates.The Journal of chemical physics · 2026Article
- Histone H3 tail charge patterns govern nucleosome condensate formation and dynamics.Nucleic acids research · 2026Article
- Biomolecular condensate viscoelasticity is dictated by the interplay between single-molecule shape memory and mesh reconfigurability.bioRxiv : the preprint server for biology · 2025Article
- Histone H3 tail charge patterns govern nucleosome condensate formation and dynamics.bioRxiv : the preprint server for biology · 2025Article
- Protein aggregates and biomolecular condensates: implications for human health and disease.Frontiers in molecular biosciences · 2025Review
Corrections and comments
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Authors and funding
2 authors.
Funding
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Abstract
The central goal of mechanobiology is to understand how the mechanical forces and material properties of organelles, cells, and tissues influence biological processes and functions. Since the first description of biomolecular condensates, it was hypothesized that they obtain material properties that are tuned to their functions inside cells. Thus, they represent an intriguing playground for mechanobiology. The idea that biomolecular condensates exhibit diverse and adaptive material properties highlights the need to understand how different material states respond to external forces and whether these responses are linked to their physiological roles within the cell. For example, liquids buffer and dissipate, while solids store and transmit mechanical stress, and the relaxation time of a viscoelastic material can act as a mechanical frequency filter. Hence, a liquid-solid transition of a condensate in the force transmission pathway can determine how mechanical signals are transduced within and in-between cells, affecting differentiation, neuronal network dynamics, and behavior to external stimuli. Here, we first review our current understanding of the molecular drivers and how rigidity phase transitions are set forth in the complex cellular environment. We will then summarize the technical advancements that were necessary to obtain insights into the rich and fascinating mechanobiology of condensates, and finally, we will highlight recent examples of physiological liquid-solid transitions and their connection to specific cellular functions. Our goal is to provide a comprehensive summary of the field on how cells harness and regulate condensate mechanics to achieve specific functions.
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Registered trials
Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.