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      Hydration dynamics of a peripheral membrane protein

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          Abstract

          Water dynamics in the hydration shell of the peripheral membrane protein annexin B12 were studied using MD simulations and Overhauser DNP-enhanced NMR. We show that retardation of water motions near phospholipid bilayers is extended by the presence of a membrane-bound protein, up to around 10 Å above that protein. Near the membrane surface, electrostatic interactions with the lipid head groups strongly slow down water dynamics, whereas protein-induced water retardation is weaker and dominates only at distances beyond 10 Å from the membrane surface. The results can be understood from a simple model based on additive contributions from the membrane and the protein to the activation free energy barriers of water diffusion next to the biomolecular surfaces. Furthermore, analysis of the intermolecular vibrations of the water network reveals that retarded water motions near the membrane shift the vibrational modes to higher frequencies, which we used to identify an entropy gradient from the membrane surface towards the bulk water. Our results have implications for processes that take place at lipid membrane surfaces, including molecular recognition, binding, and protein-protein interactions.

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          Journal
          7503056
          4435
          J Am Chem Soc
          J. Am. Chem. Soc.
          Journal of the American Chemical Society
          0002-7863
          1520-5126
          23 May 2017
          02 September 2016
          14 September 2016
          21 July 2017
          : 138
          : 36
          : 11526-11535
          Affiliations
          []Center for Theoretical Chemistry, Faculty of Chemistry and Biochemistry, Ruhr-University, Bochum, Germany
          []Max-Planck Institut für Kohlenforschung, Mülheim an der Ruhr, Germany
          []Department of Chemistry and Biochemistry and Department of Chemical Engineering, University of California, Santa Barbara, U.S.A
          [§ ]Department of Biochemistry and Molecular Biology, Zilkha Neurogenetic Institute, Keck School of Medicine, University of Southern California, Los Angeles, U.S.A
          Author notes
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          Contributed equally to this work

          Article
          PMC5519773 PMC5519773 5519773 nihpa876806
          10.1021/jacs.6b07005
          5519773
          27548572
          0e0b21de-abec-4d99-a156-c7196a61ea0e
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