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Updated: Jan 7, 2026

Detecting and Characterizing Protein Self-Assembly In Vivo by Flow Cytometry
Published on: July 17, 2019
A Site-Specific Self-Association of a Protein Hub Drives Its Phase Separation
Mohammad Ahmad1, Yazheng Wang1,2, Siddharth Krishnan3
1Department of Physics, Syracuse University, 201 Physics Building, Syracuse, New York 13244, United States.
None:
Liquid-liquid phase separation (LLPS) is pivotal in generating membraneless organelles and assembling cellular inclusions. Interactions mediated by RNA and intrinsically disordered regions of proteins are ubiquitous mechanisms that drive their LLPS. Here, we identify that a site-specific interaction stimulates the LLPS of WDR5, a chromatin-associated protein hub. Our study proves that WDR5 undergoes self-association between its N-terminal intrinsically disordered region and a multitasking binding site. This mechanism facilitates the formation of liquid droplets in a cell-free environment. Notably, WDR5 undergoes phase separation in mammalian cells, forming nuclear puncta (NP) in response to osmotic stress. Further, nuclear WDR5 condensates encompass a critical oncoprotein transcription factor, MYC, and WDR5-binding RNA under hyperosmotic conditions. Our findings suggest that RNA modulates WDR5 phase separation and influences nuclear puncta formation, potentially serving as a general stress response mechanism. These outcomes illuminate a distinctive mechanochemical signaling process, highlighting the functional interplay among WDR5, RNA, and MYC at the chromatin level, particularly during osmotically induced LLPS.
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