4.5 Article

Assembly of model postsynaptic densities involves interactions auxiliary to stoichiometric binding

期刊

BIOPHYSICAL JOURNAL
卷 121, 期 1, 页码 157-171

出版社

CELL PRESS
DOI: 10.1016/j.bpj.2021.10.008

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资金

  1. Canadian Institutes of Health Research [NJT-155930]
  2. Natural Sciences and Engineering Research Council of Canada [RGPIN-2018-04351]
  3. National Key R&D Program of China [2019YFA0508402]
  4. Research Grants Council of Hong Kong [AoE-M09-12]

向作者/读者索取更多资源

This study investigates the formation of functional biomolecular condensates through liquid-liquid phase separation (LLPS) and reveals the role of multiple interactions in the assembly process.
The assembly of functional biomolecular condensates often involves liquid-liquid phase separation (LLPS) of proteins with multiple modular domains, which can be folded or conformationally disordered to various degrees. To understand the LLPS-driving domain-domain interactions, a fundamental question is how readily the interactions in the condensed phase can be inferred from interdomain interactions in dilute solutions. In particular, are the interactions leading to LLPS exclusively those underlying the formation of discrete interdomain complexes in homogeneous solutions? We address this question by developing a mean-field LLPS theory of two stoichiometrically constrained solute species. The theory is applied to the neuronal proteins SynGAP and PSD-95, whose complex coacervate serves as a rudimentary model for neuronal postsynaptic densities (PSDs). The predicted phase behaviors are compared with experiments. Previously, a three SynGAP/two PSD-95 ratio was determined for SynGAP/PSD-95 complexes in dilute solutions. However, when this 3:2 stoichiometry is uniformly imposed in our theory encompassing both dilute and condensed phases, the tie-line pattern of the predicted SynGAP/PSD-95 phase diagram differs drastically from that obtained experimentally. In contrast, theories embodying alternate scenarios postulating auxiliary SynGAPPSD-95 as well as SynGAP-SynGAP and PSD-95-PSD-95 interactions, in addition to those responsible for stoichiometric SynGAP/PSD-95 complexes, produce tie-line patterns consistent with experiment. Hence, our combined theoretical -experimental analysis indicates that weaker interactions or higher-order complexes beyond the 3:2 stoichiometry, but not yet documented, are involved in the formation of SynGAP/PSD-95 condensates, imploring future efforts to ascertain the nature of these auxiliary interactions in PSD-like LLPS and underscoring a likely general synergy between stoichiometric, structurally specific binding and stochastic, multivalent fuzzyinteractions in the assembly of functional biomolecular condensates.

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