Published July 9, 2024
| Version v1
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Mechanism of phosphate release from actin filaments
- 1. University of Chicago
- 2. Yale University
Description
-phosphate is hydrolyzedwithin seconds and dissociates over minutes. We used all-atom molecular dynamics simulations to sample the release of phosphate from filaments and study residues that gate release. Dissociation of phosphate from Mg2+ is rate limiting and associated with an energy barrier of 20 kcal/mol, consistent with experimental rates of phosphate release. Phosphate then diffuses within an internal cavity toward a gate formed by R177, as suggested in prior computational studies and cryo-EM structures. The gate is closed when R177 hydrogen bonds with N111 and is open when R177 forms a salt bridge with D179. Most of the time, interactions of R177 with other residues occlude the phosphate release pathway. Machine learning analysis reveals that the occluding interactions fluctuate rapidly, underscoring the secondary role of backdoor gate opening in Pi release, in contrast with the previous hypothesis that gate opening is the primary event.
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wang-et-al-2024-mechanism-of-phosphate-release-from-actin-filaments.pdf
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Additional details
Identifiers
- DOI
- 10.1073/pnas.2408156121
- Other
- oai:uchicago.tind.io:12913
Funding
- National Institute of General Medical Sciences
- R01GM063796
- National Institute of General Medical Sciences
- R01GM026132
- University of Chicago
- Chicago Center for Theoretical Chemistry Fellowship
- University of Chicago
- Schmidt AI in Science Postdoctoral Fellowship
- University of Chicago
- Research Computing Center
- National Institutes of Health
- 1S10OD028655-01