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March 26, 2026Accounts of Chemical Research0 citations

Structure and Dynamics of Membrane Proteins in Native Cellular Membranes Revealed by In Situ Solid-State NMR

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HXHuayong XieWZWeijing ZhaoJYJie Yang

Key Points

  • The research aims to investigate the structure and dynamics of membrane proteins within native cellular membranes using solid-state NMR techniques.
  • Established integrated in situ ssNMR methodologies for membrane proteins
  • Developed selective membrane sample preparation protocols
  • Utilized signal-enhancing pulse sequences for better spectral resolution
  • Conducted residue-specific dynamics analysis
  • Achieved high-resolution structure determination of various membrane proteins like aquaporin Z and MscL
  • Provided insights into how lipid environments influence membrane protein function
  • Demonstrated the feasibility of in situ ssNMR techniques for studying membrane proteins in their native settings

Abstract

ConspectusMembrane proteins perform essential functions in the complex and heterogeneous environment of the cellular membrane, where their structure and activity are profoundly influenced by the native lipid milieu. Most membrane protein structures in the Protein Data Bank (PDB) have been determined in vitro in membrane-mimetic environments such as detergents. These membrane-mimetic environments can perturb native protein conformations and may result in a loss of function, which in turn leads to misinterpretations of molecular mechanisms. Direct structural investigations of membrane proteins within native cellular membranes are crucial to understanding the undisturbed molecular mechanism. Solid-state nuclear magnetic resonance (ssNMR) spectroscopy provides a powerful platform for in situ studies of membrane proteins. However, achieving high-resolution structure determination in native membranes faces significant obstacles, including limited spectral sensitivity, background interference, and substantial uncertainties in extracting distance restraints from ssNMR spectra. These issues have long hindered complete chemical shift assignments and the determination of high-resolution structures in native environments. To address these issues, our group has established integrated in situ ssNMR methodologies, enabled by the foundational contributions of many research groups. These advances allow for complete resonance assignments, high-resolution structure determination, and residue-specific dynamics analysis of membrane proteins in native cellular membranes. This Account summarizes our contributions over the past decade to in situ ssNMR studies of membrane proteins organized around two complementary themes: methodological advances in in situ ssNMR and the elucidation of how the membrane environment influences molecular mechanisms. The discussion systematically examines (i) recent methodological progress, including selective membrane sample preparation protocols compatible with both 13C- and 1H-detected ssNMR, signal-enhancing pulse sequences, and structural computation methods and (ii) key structural and dynamic insights from in situ ssNMR, including high-resolution structure determination of diverse membrane proteins such as aquaporin Z (AqpZ), the sugar transporter BjSemiSWEET, and the channel protein MscL, alongside a mechanistic understanding of how the membrane environment regulates their functions. By demonstrating the feasibility of in situ ssNMR for determining membrane protein structures in native settings and providing unprecedented atomic-level insights into their functions, we aim to advance research on membrane-sensitive proteins and promote the broader application of in situ ssNMR methodologies.

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Cite This Study

Xie et al. (2026) studied this question.

synapsesocial.com/papers/69c4cdb6fdc3bde44891a5f3https://doi.org/10.1021/acs.accounts.5c00872
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