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Structure-function properties in disordered condensates

Structure-function properties in disordered condensates

来源:bioRxiv_logobioRxiv
英文摘要

Biomolecular condensates appear throughout the cell serving a wide variety of functions. Many condensates appear to form by the assembly of multivalent molecules, which produce phase separated networks with liquid-like properties. These networks then recruit client molecules, with the total composition providing functionality. Here we use a model system of poly-SUMO and poly-SIM proteins to understand client-network interactions and find that the structure of the network plays a strong role in defining client recruitment, and thus functionality. The basic unit of assembly in this system is a zipper-like filament composed of alternating poly-SUMO and poly-SIM molecules. These filaments have defects of unsatisfied bonds that allow for both the formation of a 3D network and the recruitment of clients. The filamentous structure constrains the scaffold stoichiometries and the distribution of client recruitment sites that the network can accommodate. This results in a non-monotonic client binding response that can be tuned independently by the client valence and binding energy. These results show how the interactions within liquid states can be disordered yet still contain structural features that provide functionality to the condensate.

Bhandari Kamal、Schmit Jeremy D.、Cotten Michael A.、Rosen Michael K.、Kim Jonggul

Department of Physics, Kansas State UniversityDepartment of Physics, Kansas State UniversityDepartment of Biophysics, UT Southwestern Medical CenterDepartment of Biophysics, UT Southwestern Medical CenterDepartment of Biophysics, UT Southwestern Medical Center

10.1101/2020.05.14.096388

分子生物学细胞生物学生物科学现状、生物科学发展

Bhandari Kamal,Schmit Jeremy D.,Cotten Michael A.,Rosen Michael K.,Kim Jonggul.Structure-function properties in disordered condensates[EB/OL].(2025-03-28)[2025-08-02].https://www.biorxiv.org/content/10.1101/2020.05.14.096388.点此复制

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