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Updated: Aug 29, 2026

Sedimentation Equilibrium of a Small Oligomer-forming Membrane Protein: Effect of Histidine Protonation on Pentameric Stability
Published on: April 2, 2015
Discrete domains within the rotavirus VP5* direct peripheral membrane association and membrane permeability
Nina E Golantsova1, Elena E Gorbunova, Erich R Mackow
1Department of Medicine, Stony Brook University, Stony Brook, New York 11794, USA.
Abstract:
Cleavage of the rotavirus spike protein, VP4, is required for rotavirus-induced membrane permeability and viral entry into cells. The VP5* cleavage product selectively permeabilizes membranes and liposomes and contains an internal hydrophobic domain that is required for membrane permeability. Here we investigate VP5* domains (residues 248 to 474) that direct membrane binding. We determined that expressed VP5 fragments containing residues 248 to 474 or 265 to 474, including the internal hydrophobic domain, bind to cellular membranes but are not present in Triton X-100-resistant membrane rafts. Expressed VP5 partitions into aqueous but not detergent phases of Triton X-114, suggesting that VP5 is not integrally inserted into membranes. Since high-salt or alkaline conditions eluted VP5 from membranes, our findings demonstrate that VP5 is peripherally associated with membranes. Interestingly, mutagenesis of residue 394 (W-->R) within the VP5 hydrophobic domain, which abolishes VP5-directed permeability, had no effect on VP5's peripheral membrane association. In contrast, deletion of N-terminal VP5 residues (residues 265 to 279) abolished VP5 binding to membranes. Alanine mutagenesis of two positively charged residues within this domain (residues 274R and 276K) dramatically reduced (>95%) binding of VP5 to membranes and suggested their potential interaction with polar head groups of the lipid bilayer. Mutations in either the VP5 hydrophobic or basic domain blocked VP5-directed permeability of cells. These findings indicate that there are at least two discrete domains within VP5* required for pore formation: an N-terminal basic domain that permits VP5* to peripherally associate with membranes and an internal hydrophobic domain that is essential for altering membrane permeability. These results provide a fundamental understanding of interactions between VP5* and the membrane, which are required for rotavirus entry.
Insights
Rotavirus entry requires VP4 spike protein cleavage. The VP5* fragment binds peripherally to cell membranes via an N-terminal basic domain and an internal hydrophobic domain, essential for viral entry.
Area of Science:
- Virology
- Cell Biology
- Structural Biology
Background:
- Rotavirus spike protein VP4 cleavage is crucial for viral entry and membrane permeabilization.
- The VP5* cleavage product facilitates membrane permeability and contains a hydrophobic domain essential for this function.
Purpose of the Study:
- To investigate the specific domains of VP5* responsible for membrane binding.
- To elucidate the mechanism of VP5* interaction with cellular membranes for rotavirus entry.
Main Methods:
- Expression and analysis of VP5 fragments with defined residue ranges.
- Membrane binding assays using cellular membranes and liposomes.
- Triton X-100 and Triton X-114 partitioning to assess membrane association.
- Site-directed mutagenesis to investigate the role of specific residues and domains.
Main Results:
- VP5 fragments (residues 248-474 or 265-474) bind peripherally to membranes, not within rafts.
- VP5 association is sensitive to high-salt and alkaline conditions, confirming peripheral binding.
- An N-terminal basic domain (residues 265-279) is essential for membrane binding, while the hydrophobic domain is critical for permeability.
Conclusions:
- VP5* utilizes at least two distinct domains for membrane interaction and pore formation.
- An N-terminal basic domain mediates peripheral membrane association, and an internal hydrophobic domain alters membrane permeability.
- These findings provide critical insights into the molecular mechanisms of rotavirus entry.
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