Universal Relation between Instantaneous Diffusivity and Radius of Gyration of Proteins in Aqueous Solution
Protein conformational fluctuations are highly complex and exhibit long-term correlations. Here, molecular dynamics simulations of small proteins demonstrate that these conformational fluctuations directly affect the protein's instantaneous diffusivity D_{I}. We find that the radius of gyration...
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Veröffentlicht in: | Physical review letters 2021-03, Vol.126 (12), p.128101-128101, Article 128101 |
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Sprache: | eng |
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Zusammenfassung: | Protein conformational fluctuations are highly complex and exhibit long-term correlations. Here, molecular dynamics simulations of small proteins demonstrate that these conformational fluctuations directly affect the protein's instantaneous diffusivity D_{I}. We find that the radius of gyration R_{g} of the proteins exhibits 1/f fluctuations that are synchronous with the fluctuations of D_{I}. Our analysis demonstrates the validity of the local Stokes-Einstein-type relation D_{I}∝1/(R_{g}+R_{0}), where R_{0}∼0.3 nm is assumed to be a hydration layer around the protein. From the analysis of different protein types with both strong and weak conformational fluctuations, the validity of the Stokes-Einstein-type relation appears to be a general property. |
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ISSN: | 0031-9007 1079-7114 |
DOI: | 10.1103/PhysRevLett.126.128101 |