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Membrane Topology of an Ion Channel Detected by Solid-State Nuclear Magnetic Resonance and Paramagnetic Effects.

Yimin MiaoDennis LamJianqin ZhuangJing ZhuSebastien F PogetMing Tang
Published in: The journal of physical chemistry letters (2020)
Ion channels are often targeted by toxins or other ligands to modify their channel activities and alter ion conductance. Interactions between toxins and ion channels could result in changes in membrane insertion depth for residues close to the binding site. Paramagnetic solid-state nuclear magnetic resonance (SSNMR) has shown great potential in providing structural information on membrane samples. We used KcsA as a model ion channel to investigate how the paramagnetic effects of Mn2+ and Dy3+ ions with headgroup-modified chelator lipids would influence the SSNMR signals of membrane proteins in proteoliposomes. Spectral comparisons have shown significant changes of peak intensities for the residues in the loop or terminal regions due to paramagnetic effects corresponding to the close proximity to the membrane surface. Hence, these results demonstrate that paramagnetic SSNMR can be used to detect surface residues based on the topology and membrane insertion properties for integral membrane proteins.
Keyphrases
  • magnetic resonance
  • solid state
  • optical coherence tomography
  • magnetic resonance imaging
  • healthcare
  • single molecule
  • transcription factor
  • computed tomography
  • quantum dots
  • health information
  • human health