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Updated: Feb 10, 2026

An Optimized Hemagglutination Inhibition HI Assay to Quantify Influenza-specific Antibody Titers
Published on: December 1, 2017
Structural basis for proton conduction and inhibition by the influenza M2 protein
1Department of Chemistry, Iowa State University, Ames, Iowa 50011, USA. mhong@iastate.edu
Abstract:
The influenza M2 protein forms an acid-activated and drug-sensitive proton channel in the virus envelope that is important for the virus lifecycle. The functional properties and high-resolution structures of this proton channel have been extensively studied to understand the mechanisms of proton conduction and drug inhibition. We review biochemical and electrophysiological studies of M2 and discuss how high-resolution structures have transformed our understanding of this proton channel. Comparison of structures obtained in different membrane-mimetic solvents and under different pH using X-ray crystallography, solution NMR, and solid-state NMR spectroscopy revealed how the M2 structure depends on the environment and showed that the pharmacologically relevant drug-binding site lies in the transmembrane (TM) pore. Competing models of proton conduction have been evaluated using biochemical experiments, high-resolution structural methods, and computational modeling. These results are converging to a model in which a histidine residue in the TM domain mediates proton relay with water, aided by microsecond conformational dynamics of the imidazole ring. These mechanistic insights are guiding the design of new inhibitors that target drug-resistant M2 variants and may be relevant for other proton channels.
Insights
The influenza M2 protein forms a crucial proton channel. Its structure and function, revealed by advanced methods, inform the development of new drugs targeting resistant strains.
Area of Science:
- Virology
- Structural Biology
- Biophysics
Background:
- The influenza M2 protein forms an acid-activated proton channel essential for the viral lifecycle.
- Understanding its function is key to developing antiviral drugs.
Purpose of the Study:
- To review biochemical and electrophysiological studies of the M2 proton channel.
- To discuss how high-resolution structures have advanced understanding of proton conduction and drug inhibition.
Main Methods:
- X-ray crystallography
- Solution NMR spectroscopy
- Solid-state NMR spectroscopy
- Biochemical experiments
- Electrophysiology
- Computational modeling
Main Results:
- M2 structure is dependent on its membrane environment and pH.
- The drug-binding site is located within the transmembrane (TM) pore.
- A histidine residue in the TM domain likely mediates proton relay with water, involving imidazole ring dynamics.
Conclusions:
- High-resolution structural data has transformed the understanding of the M2 proton channel.
- Mechanistic insights into proton conduction are guiding the design of new inhibitors for drug-resistant influenza strains.
- Findings may have implications for other proton channels.
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