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Updated: May 8, 2026

Subnanometer-resolution Structural Determination of Hemagglutinin from Cryo-electron Tomography of Influenza Viruses
Published on: November 7, 2025
Conformational analysis of the full-length M2 protein of the influenza A virus using solid-state NMR
Shu Yu Liao1, Keith J Fritzsching, Mei Hong
1Department of Chemistry, Iowa State University, Ames, Iowa, 50011.
Abstract:
The influenza A M2 protein forms a proton channel for virus infection and mediates virus assembly and budding. While extensive structural information is known about the transmembrane helix and an adjacent amphipathic helix, the conformation of the N-terminal ectodomain and the C-terminal cytoplasmic tail remains largely unknown. Using two-dimensional (2D) magic-angle-spinning solid-state NMR, we have investigated the secondary structure and dynamics of full-length M2 (M2FL) and found them to depend on the membrane composition. In 2D (13)C DARR correlation spectra, 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC)-bound M2FL exhibits several peaks at β-sheet chemical shifts, which result from water-exposed extramembrane residues. In contrast, M2FL bound to cholesterol-containing membranes gives predominantly α-helical chemical shifts. Two-dimensional J-INADEQUATE spectra and variable-temperature (13)C spectra indicate that DMPC-bound M2FL is highly dynamic while the cholesterol-containing membranes significantly immobilize the protein at physiological temperature. Chemical-shift prediction for various secondary-structure models suggests that the β-strand is located at the N-terminus of the DMPC-bound protein, while the cytoplasmic domain is unstructured. This prediction is confirmed by the 2D DARR spectrum of the ectodomain-truncated M2(21-97), which no longer exhibits β-sheet chemical shifts in the DMPC-bound state. We propose that the M2 conformational change results from the influence of cholesterol, and the increased helicity of M2FL in cholesterol-rich membranes may be relevant for M2 interaction with the matrix protein M1 during virus assembly and budding. The successful determination of the β-strand location suggests that chemical-shift prediction is a promising approach for obtaining structural information of disordered proteins before resonance assignment.
Insights
Influenza A M2 protein structure changes based on membrane composition. Cholesterol promotes a more helical M2 protein, impacting virus assembly.
Area of Science:
- Structural biology
- Virology
- Biophysics
Background:
- The influenza A M2 protein is crucial for viral infection, assembly, and budding.
- While parts of the M2 protein are well-characterized, its N-terminal ectodomain and C-terminal tail structures remain largely unknown.
Purpose of the Study:
- To investigate the secondary structure and dynamics of the full-length M2 protein (M2FL).
- To determine how membrane composition influences M2FL conformation and dynamics.
- To explore the role of cholesterol in M2 protein structure and function.
Main Methods:
- Two-dimensional (2D) magic-angle-spinning solid-state NMR spectroscopy.
- 2D (13)C DARR and J-INADEQUATE correlation spectra.
- Variable-temperature (13)C spectra.
- Chemical-shift prediction for secondary-structure models.
Main Results:
- M2FL exhibits β-sheet structures in 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC) membranes, indicating water-exposed extramembrane residues.
- M2FL adopts predominantly α-helical structures in cholesterol-containing membranes.
- DMPC-bound M2FL is highly dynamic, while cholesterol-containing membranes significantly immobilize the protein.
- A β-strand is located at the N-terminus of DMPC-bound M2FL; the cytoplasmic domain is unstructured.
Conclusions:
- Cholesterol induces a conformational change in M2FL, increasing its helicity.
- The increased helicity of M2FL in cholesterol-rich membranes may be important for M2-M1 protein interactions during virus assembly.
- Chemical-shift prediction is a valuable tool for structural analysis of disordered proteins.
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