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https://doi.org/10.1038/s41467-017-01745-4
Title: | MDia1 senses both force and torque during F-actin filament polymerization | Authors: | Yu M. Yuan X. Lu C. Le S. Kawamura R. Efremov A.K. Zhao Z. Kozlov M.M. Sheetz M. Bershadsky A. Yan J. |
Keywords: | biotin F actin protein protein mDia1 unclassified drug actin carrier protein biochemistry biomechanics chemical binding force polymerization protein torque actin filament actin polymerization Article force hypothesis magnetism protein conformation torque actin filament animal biomechanics chemistry genetics kinetics Leporidae metabolism polymerization torque Actin Cytoskeleton Actins Animals Biomechanical Phenomena Carrier Proteins Kinetics Polymerization Rabbits Torque |
Issue Date: | 2017 | Publisher: | Nature Publishing Group | Citation: | Yu M., Yuan X., Lu C., Le S., Kawamura R., Efremov A.K., Zhao Z., Kozlov M.M., Sheetz M., Bershadsky A., Yan J. (2017). MDia1 senses both force and torque during F-actin filament polymerization. Nature Communications 8 (1) : 1650. ScholarBank@NUS Repository. https://doi.org/10.1038/s41467-017-01745-4 | Abstract: | Formins, an important family of force-bearing actin-polymerizing factors, function as homodimers that bind with the barbed end of actin filaments through a ring-like structure assembled from dimerized FH2 domains. It has been hypothesized that force applied to formin may facilitate transition of the FH2 ring from an inhibitory closed conformation to a permissive open conformation, speeding up actin polymerization. We confirm this hypothesis for mDia1 dependent actin polymerization by stretching a single-actin filament in the absence of profilin using magnetic tweezers, and observe that increasing force from 0.5 to 10 pN can drastically speed up the actin polymerization rate. Further, we find that this force-promoted actin polymerization requires torsionally unconstrained actin filament, suggesting that mDia1 also senses torque. As actin filaments are subject to complex mechanical constraints in living cells, these results provide important insights into how formin senses these mechanical constraints and regulates actin organization accordingly. © 2017 The Author(s). | Source Title: | Nature Communications | URI: | https://scholarbank.nus.edu.sg/handle/10635/174483 | ISSN: | 2041-1723 | DOI: | 10.1038/s41467-017-01745-4 |
Appears in Collections: | Elements Staff Publications |
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