Viscoelasticity of biomolecular condensates conforms to the Jeffreys model

生物分子凝聚体的粘弹性符合杰弗里斯模型

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Abstract

Biomolecular condensates, largely by virtue of their material properties, are revolutionizing biology, and yet, the physical understanding of these properties is lagging. Here, I show that the viscoelasticity of condensates can be captured by a simple model, comprising a component where shear relaxation is an exponential function (with time constant τ(1)) and a component with nearly instantaneous shear relaxation (time constant τ(0) → 0). Modulation of intermolecular interactions, e.g., by adding salt, can disparately affect the two components such that the τ(1) component may dominate at low salt, whereas the τ(0) component may dominate at high salt. Condensates have a tendency to fuse, with the dynamics accelerated by interfacial tension and impeded by viscosity. For fast-fusion condensates, shear relaxation on the τ(1) timescale may become rate-limiting such that the fusion speed is no longer in direction proportion to the interfacial tension. These insights help narrow the gap in understanding between the biology and physics of biomolecular condensates.

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