Supramolecular structure of membrane-associated polypeptides by combining solid-state NMR and Molecular Dynamics simulations
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2012
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Abstract
Elemental biological functions such as molecular signal transduction are determined by the dynamic interplay between polypeptides and the membrane environment. Determining such supramolecular arrangements poses a significant challenge for classical structural biology methods. We introduce an iterative approach that combines magic-angle spinning solid-state NMR spectroscopy and atomistic molecular dynamics simulations for the determination of the structure and topology of membrane-bound systems with a resolution and level of accuracy difficult to obtain by either method alone. Our study focuses on the Shaker B ball peptide that is representative for rapid N-type inactivating domains of voltage-gated K þ channels, associated with negatively charged lipid bilayers.
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Weingarth, M H, Ader, C, Melquiond, A S J, Nand, D, Pongs, O, Becker, S, Bonvin, A M J J & Baldus, M 2012, 'Supramolecular structure of membrane-associated polypeptides by combining solid-state NMR and Molecular Dynamics simulations', Biophysical Journal, vol. 103, no. 1, pp. 29-37. https://doi.org/10.1016/j.bpj.2012.05.016