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Phosphoregulation of hierarchical protein condensate formation during clathrin-mediated endocytosis

Y. Sun, A. Wong, G. Hu, A. Yeam, K. Wong, L. V. Dao, A. Tschanz, D. G. Drubin

Preprint

In the authors' words

The sequential assembly of over 50 proteins during clathrin-mediated endocytosis (CME) is well documented in yeast. However, the mechanisms governing this ordered recruitment remain poorly understood. Biomolecular condensation is proposed to orchestrate CME, but defining biophysical parameters in vivo remains challenging. Here, we developed a quantitative in vivo titration strategy to systematically determine CME protein assembly profiles. Beyond the previously reported Ede1 (yeast Eps15), seven additional proteins formed enlarged, concentration-dependent assemblies with distinct biophysical properties. Single-cell profiling revealed two biophysical classes among these eight proteins: homeostatic buffers with defined saturation boundaries and continuous assemblers that scale linearly. Acting as scaffolds and clients, these conserved proteins form an interconnected network of kinases, phosphatase recruiters, and substrates. Within this network, reversible phosphorylation modulates assembly stability to drive recruitment transitions. Collectively, this work establishes a two-stage model of protein condensation that drives CME progression from initiation to maturation and offers a general framework for how protein phosphorylation dynamically modulates biomolecular condensation in vivo.

Main resultThe abstract does not state a limitation.

Appeared: Wednesday, September 23. bioRxiv. Preprint, not yet peer-reviewed.

DOI: 10.64898/2026.09.17.752504