| Literature DB >> 31402219 |
David D Gae1, Madhu S Budamagunta2, John F Hess3, Robert M McCarrick4, Gary A Lorigan4, Paul G FitzGerald5, John C Voss6.
Abstract
Electron paramagnetic resonance (EPR) spectroscopy of full-length vimentin and X-ray crystallography of vimentin peptides has provided concordant structural data for nearly the entire central rod domain of the protein. In this report, we use a combination of EPR spectroscopy and molecular modeling to determine the structure and dynamics of the missing region and unite the separate elements into a single structure. Validation of the linker 1-2 (L1-2) modeling approach is demonstrated by the close correlation between EPR and X-ray data in the previously solved regions. Importantly, molecular dynamic (MD) simulation of the constructed model agrees with spin label motion as determined by EPR. Furthermore, MD simulation shows L1-2 heterogeneity, with a concerted switching of states among the dimer chains. These data provide the first ever experimentally driven model of a complete intermediate filament rod domain, providing research tools for further modeling and assembly studies.Entities:
Keywords: EPR; ESR; UCSF chimera: macromolecular structure; electron paramagnetic resonance; intermediate filaments; molecular dynamics; molecular modeling; site-directed spin labeling; vimentin
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Year: 2019 PMID: 31402219 PMCID: PMC6774864 DOI: 10.1016/j.str.2019.07.011
Source DB: PubMed Journal: Structure ISSN: 0969-2126 Impact factor: 5.006