Hydrogen bond strength in membrane proteins probed by time-resolved 1 H-detected solid-state NMR and MD simulations

Publication date

2017-10-01

Authors

Medeiros Silva, JoãoISNI 0000000391138381
Jekhmane, ShehrazadeISNI 0000000506013870
Baldus, M.ISNI 0000000139673796
Weingarth, M.H.ISNI 0000000358154718

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Article
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cc_by

Abstract

1H-detected solid-state NMR in combination with 1H/2D exchange steps allows for the direct identification of very strong hydrogen bonds in membrane proteins. On the example of the membrane-embedded potassium channel KcsA, we quantify the longevity of such very strong hydrogen bonds by combining time-resolved 1H-detected solid-state NMR experiments and molecular dynamics simulations. In particular, we show that the carboxyl-side chain of the highly conserved residue Glu51 is involved in ultra-strong hydrogen bonds, which are fully-water-exposed and yet stable for weeks. The astonishing stability of these hydrogen bonds is important for the structural integrity of potassium channels, which we further corroborate by computational studies.

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Citation

Medeiros-silva, J, Jekhmane, M, Baldus, M & Weingarth, M 2017, 'Hydrogen bond strength in membrane proteins probed by time-resolved 1 H-detected solid-state NMR and MD simulations', Solid State Nuclear Magnetic Resonance, vol. 87, pp. 80-85. https://doi.org/10.1016/j.ssnmr.2017.03.003