Biomolecular condensates frequently rely on membrane interactions for localization, recruitment, and chemical substrates. These interactions are often mediated by membrane-anchored tethers, a feature overlooked by traditional wetting models. Using a surface free-energy framework that couples surface tension with tether density, we solve for the contact angle and tether density in a spherical cap geometry, generalizing the Young-Dupré equation. While the contact angle retains its force-balance form, the tether density depends nontrivially on the form and strength of tether-condensate interactions. We solve for this dependence within a simple interaction model, and find a wetting phase diagram with a transition from non-wetting to partial to complete wetting over a biologically realistic parameter range. This work provides a quantitative framework for characterizing condensate-membrane interactions, uncovering potential mechanisms by which membranes mediate cellular organization and function.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11643268 | PMC |
http://dx.doi.org/10.1101/2024.12.04.626804 | DOI Listing |
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