Electric-field-stimulated protein mechanics.

Doeke R Hekstra, K Ian White, Michael A Socolich, Robert W Henning, Vukica Šrajer, Rama Ranganathan

Journal: Nature 2017;540(7633):400-405

PMID: 27926732

Abstract

The internal mechanics of proteins-the coordinated motions of amino acids and the pattern of forces constraining these motions-connects protein structure to function. Here we describe a new method combining the application of strong electric field pulses to protein crystals with time-resolved X-ray crystallography to observe conformational changes in spatial and temporal detail. Using a human PDZ domain (LNX2) as a model system, we show that protein crystals tolerate electric field pulses strong enough to drive concerted motions on the sub-microsecond timescale. The induced motions are subtle, involve diverse physical mechanisms, and occur throughout the protein structure. The global pattern of electric-field-induced motions is consistent with both local and allosteric conformational changes naturally induced by ligand binding, including at conserved functional sites in the PDZ domain family. This work lays the foundation for comprehensive experimental study of the mechanical basis of protein function.

Address: Green Center for Systems Biology, UT Southwestern Medical Center, 6001 Forest Park Road, Dallas, Texas 75390, USA.; Center for Advanced Radiation Sources, The University of Chicago, 929 East 57th Street, Chicago, Illinois 60637, USA.; Departments of Biophysics and Pharmacology, UT Southwestern Medical Center, 6001 Forest Park Road, Dallas, Texas 75390, USA.
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