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The flexibility and dynamics of protein disulfide isomerase
Authors:Rudolf A. Römer  Stephen A. Wells  J. Emilio Jimenez‐Roldan  Moitrayee Bhattacharyya  Saraswathi Vishweshwara  Robert B. Freedman
Affiliation:1. Department of Physics and Centre for Scientific Computing, The University of Warwick, Coventry, United Kingdom;2. Department of Chemical Engineering, University of Bath, Bath, United Kingdom;3. Molecular Biophysics Unit, Indian Institute of Science, Bangalore, India;4. School of Life Sciences, The University of Warwick, Coventry, United Kingdom
Abstract:We have studied the mobility of the multidomain folding catalyst, protein disulfide isomerase (PDI), by a coarse‐graining approach based on flexibility. We analyze our simulations of yeast PDI (yPDI) using measures of backbone movement, relative positions and orientations of domains, and distances between functional sites. We find that there is interdomain flexibility at every interdomain junction but these show very different characteristics. The extent of interdomain flexibility is such that yPDI's two active sites can approach much more closely than is found in crystal structures—and indeed hinge motion to bring these sites into proximity is the lowest energy normal mode of motion of the protein. The flexibility predicted for yPDI (based on one structure) includes the other known conformation of yPDI and is consistent with (i) the mobility observed experimentally for mammalian PDI and (ii) molecular dynamics. We also observe intradomain flexibility and clear differences between the domains in their propensity for internal motion. Our results suggest that PDI flexibility enables it to interact with many different partner molecules of widely different sizes and shapes, and highlights considerable similarities of yPDI and mammalian PDI. Proteins 2016; 84:1776–1785. © 2016 Wiley Periodicals, Inc.
Keywords:PDI  protein flexibility  protein dynamics  large‐domain motion  dynamics of biomolecules  theory  modeling  and computer simulation
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