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Updated: Jan 24, 2026

Green Fluorescent Protein-based Expression Screening of Membrane Proteins in Escherichia coli
Published on: January 6, 2015
The distal cytoplasmic tail of the influenza A M2 protein dynamically extends from the membrane
Grace Kim1, Hayley E Raymond1, Alice L Herneisen1
1Department of Chemistry and Biochemistry, Swarthmore College, Swarthmore, PA 19081, United States of America.
Abstract:
The influenza A M2 protein is a multifunctional membrane-associated homotetramer that orchestrates several essential events in the viral infection cycle. The monomeric subunits of the M2 homotetramer consist of an N-terminal ectodomain, a transmembrane domain, and a C-terminal cytoplasmic domain. The transmembrane domain forms a four-helix proton channel that promotes uncoating of virions upon host cell entry. The membrane-proximal region of the C-terminal domain forms a surface-associated amphipathic helix necessary for viral budding. The structure of the remaining ~34 residues of the distal cytoplasmic tail has yet to be fully characterized despite the functional significance of this region for influenza infectivity. Here, we extend structural and dynamic studies of the poorly characterized M2 cytoplasmic tail. We used SDSL-EPR to collect site-specific information on the mobility, solvent accessibility, and conformational properties of residues 61-70 of the full-length, cell-expressed M2 protein reconstituted into liposomes. Our analysis is consistent with the predominant population of the C-terminal tail dynamically extending away from the membranes surface into the aqueous medium. These findings provide insight into the hypothesis that the C-terminal domain serves as a sensor that regulates how M2 protein participates in critical events in the viral infection cycle.
Insights
This study investigates the influenza A M2 protein
Area of Science:
- Virology
- Structural Biology
- Biophysics
Background:
- Influenza A M2 protein is crucial for viral infection.
- Its transmembrane domain forms a proton channel for uncoating.
- The C-terminal domain's distal tail structure remains largely unknown.
Purpose of the Study:
- To characterize the structure and dynamics of the M2 protein's cytoplasmic tail.
- To investigate the functional significance of this region for influenza infectivity.
Main Methods:
- Site-directed spin labeling electron paramagnetic resonance (SDSL-EPR) was employed.
- Studies were performed on full-length M2 protein reconstituted into liposomes.
- Site-specific data on mobility and solvent accessibility were collected for residues 61-70.
Main Results:
- The C-terminal tail predominantly extends away from the membrane surface.
- The tail exhibits dynamic movement into the aqueous medium.
- Conformational properties of residues 61-70 were elucidated.
Conclusions:
- The M2 cytoplasmic tail is dynamically structured and extends into the aqueous environment.
- Findings support the hypothesis of the C-terminal domain acting as a regulatory sensor.
- This regulation influences M2 protein's role in critical viral infection events.
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