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August 19, 2025Nature Communications90 citationsOpen Access

Current practices in the study of biomolecular condensates: a community comment

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SASimon AlbertiPAPaolo ArosioRBRobert B. Best

Key Points

  • Biomolecular condensates reveal critical insights into cellular compartmentalization, with implications for biology.
  • These condensates undergo phase transitions driven by cellular conditions, affecting activities within the cell.
  • Soft matter physics concepts help elucidate the unique properties of these macromolecular structures.
  • Understanding condensates may lead to novel insights in cellular organization, highlighting the need for further research.

Abstract

The realization that the cell is abundantly compartmentalized into biomolecular condensates has opened new opportunities for understanding the physics and chemistry underlying many cellular processes1, fundamentally changing the study of biology2. The term biomolecular condensate refers to non-stoichiometric assemblies that are composed of multiple types of macromolecules in cells, occur through phase transitions, and can be investigated by using concepts from soft matter physics3. As such, they are intimately related to aqueous two-phase systems4 and water-in-water emulsions5. Condensates possess tunable emergent properties such as interfaces, interfacial tension, viscoelasticity, network structure, dielectric permittivity, and sometimes interphase pH gradients and electric potentials6–14. They can form spontaneously in response to specific cellular conditions or to active processes, and cells appear to have mechanisms to control their size and location15–17. Importantly, in contrast to membrane-enclosed organelles such as mitochondria or peroxisomes, condensates do not require the presence of a surrounding membrane.

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Cite This Study

Alberti et al. (2025) studied this question.

synapsesocial.com/papers/68af4766ad7bf08b1ead4961https://doi.org/10.1038/s41467-025-62055-8
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