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March 18, 2026Proceedings of the National Academy of Sciences2 citations

Condensate-mediated shape transformations of cellular membranes by capillary forces

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LHLukas HauerUniversity of CologneKSKatharina SporbeckHumboldt-Universität zu BerlinJMJoseph F. McKennaUniversity of Warwick

Key Points

  • Explore the role of condensate-mediated forces in transforming cellular membrane shapes.
  • In planta live-cell imaging to observe membrane changes in real-time.
  • In vitro reconstitution with adjustable interfacial tension to study membrane shapes.
  • Computer simulations of elastic membranes to model shape transformations.
  • High interfacial tension leads to stable sheet formations, while lower tension favors tubes and cups.
  • Hysteresis observed in transitions from tube to cup shapes under varying membrane conditions.
  • Identified energy barriers dictate the transformations between membrane shapes.

Abstract

Phase-separated biomolecular condensates with liquid-like properties play a key role in the organization and compartmentalization of the intracellular environment. Condensate-mediated capillary forces acting on membranes drive physiologically important reshaping of membrane-bound organelles, such as vacuoles and autophagosomes. Here, we explore condensate-mediated membrane shape transformations. We employ in planta live-cell imaging, an in vitro reconstitution system with tunable interfacial tension, and computer simulations of an elastic membrane model to describe three morphologies of membrane structures localized at condensate interfaces: tubes, sheets, and cups. We find that the forces associated with high interfacial tension drive the formation of stable sheets, while tubes and cups prevail at lower interfacial tension. We calculate the free energies of each membrane shape and identify the energy barriers that govern the transitions between the shapes. With this approach, we find that shape transformations depend on the history of the interfacial membrane and exhibit a tube-to-cup hysteresis. These findings indicate that temporal control of condensate surface properties can mediate the morphogenesis of cup-like structures in cells, such as the formation of “bulbs” within plant vacuoles. Our results further generalize how the interplay of condensates and membranes contributes to intracellular organization.

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Cite This Study

Hauer et al. (2026) studied this question.

synapsesocial.com/papers/69ba423c4e9516ffd37a258ehttps://doi.org/10.1073/pnas.2424126123
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