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bioRxiv · 10.1101/2024.07.28.605529

Direct quantification of condensate material properties in live cells reveals the regulation of synapsin condensates viscoelasticity by alpha-synuclein

Abstract

Synapsin and -synuclein represent a growing list of condensate-forming proteins where the material states of condensates are directly linked to cellular functions (e.g., neurotransmission) and pathology (e.g., neurodegeneration). However, quantifying condensate material properties in living systems has been a significant challenge. To address this, we develop MAPAC (micropipette aspiration and whole-cell patch clamp), a platform that allows direct material quantification of condensates in live cells. We find 10,000-fold variations in the viscoelasticity of synapsin condensates, regulated by the partitioning of -synuclein, a marker for synucleinopathies. Through in vitro reconstitutions, we identify 4 molecular factors that distinctly regulate the viscosity and interfacial tension of synapsin condensates, verifying the cellular effects of -synuclein. Overall, our study provides unprecedented quantitative insights into the material properties of neuronal condensates and reveals a crucial role of -synuclein in regulating condensate viscoelasticity. Furthermore, we envision MAPAC applicable to study a broad range of condensates in vivo.

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BibTeXRIS

Wang, H., Hoffmann, C., Tromm, J. V., Su, X., Elliott, J., Baum, J., Pang, Z. P., Milovanovic, D., Shi, Z.. 2024-07-29. Direct quantification of condensate material properties in live cells reveals the regulation of synapsin condensates viscoelasticity by alpha-synuclein. https://doi.org/10.1101/2024.07.28.605529

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