4.8 Article

Structure and hydration of membranes embedded with voltage-sensing domains

Journal

NATURE
Volume 462, Issue 7272, Pages 473-U168

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/nature08542

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Funding

  1. Intramural Research Programs of the NINDS, NIH [GM86685]
  2. National Institute on Alcohol Abuse and Alcoholism, NIH [GM74737]
  3. National Institute of General Medical Science
  4. US National Science Foundation (NSF) [CHE-0750175]
  5. Division Of Chemistry
  6. Direct For Mathematical & Physical Scien [0750175] Funding Source: National Science Foundation

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Despite the growing number of atomic-resolution membrane protein structures, direct structural information about proteins in their native membrane environment is scarce. This problem is particularly relevant in the case of the highly charged S1-S4 voltage-sensing domains responsible for nerve impulses, where interactions with the lipid bilayer are critical for the function of voltage-activated ion channels. Here we use neutron diffraction, solid-state nuclear magnetic resonance (NMR) spectroscopy and molecular dynamics simulations to investigate the structure and hydration of bilayer membranes containing S1-S4 voltage-sensing domains. Our results show that voltage sensors adopt transmembrane orientations and cause a modest reshaping of the surrounding lipid bilayer, and that water molecules intimately interact with the protein within the membrane. These structural findings indicate that voltage sensors have evolved to interact with the lipid membrane while keeping energetic and structural perturbations to a minimum, and that water penetrates the membrane, to hydrate charged residues and shape the transmembrane electric field.

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