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Conformational states of mutant M13 coat proteins are regulated by transmembrane residues
Z Li1, M Glibowicka, C Joensson
1Division of Biochemistry Research, Hospital for Sick Children, Toronto, Ontario, Canada.
Abstract:
Mutational and structural analysis of the 28 viable bacteriophage M13 mutants obtained by randomized mutagenesis of the effective transmembrane (TM) segment of the 50-residue major coat (gene VIII) protein (residues 21-39) demonstrated that M13 coat protein functionality, as reflected by phage viability, is incompatible with an increase in Gly + beta-branched residue content in its TM core. SDS-polyacrylamide gel electrophoresis and circular dichroism spectroscopy performed in membrane environments on purified mutant coat proteins revealed that these proteins exist in a range of state(s), identified as helical monomers and dimers and polymeric (alpha-helical and/or beta-sheet) species, of which relative populations, and thermally induced conformational transitions, were dependent uniquely upon mutation type and locus. Mutations to relatively polar residues (e.g. G23D, Y24D, Y24H, A27E, I32T, and T36S) stabilized principally monomeric species, while mutants with decreased beta-branched content in the protein TM hydrophobic core (e.g. V29A, V30A, V31A, V31L, and V33A) displayed mainly dimeric species. Mutation of Ile37-->Thr within a "Sternberg-Gullick" consensus sequence of the coat protein TM segment led to a highly oligomerized/polymerized protein. The overall results suggest that TM residues in M13 coat protein are not universal components of a hydrophobic anchor segment per se, but are further selected (i) to impart conformational flexibility to the TM segment through helix destabilization and (ii) to retain the capacity to regulate protein-protein association and packing motifs within membranes.
Insights
Mutating bacteriophage M13 coat protein
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Virology
Background:
- Bacteriophage M13 major coat protein (gene VIII) contains a transmembrane (TM) segment crucial for phage viability.
- Understanding the structural and functional constraints of this TM segment is key to viral assembly and infection.
Purpose of the Study:
- To investigate the impact of mutations within the M13 coat protein TM segment on protein structure, stability, and phage viability.
- To elucidate the role of specific amino acid residues in TM core packing and conformational flexibility.
Main Methods:
- Randomized mutagenesis of the M13 coat protein TM segment (residues 21-39).
- Analysis of viable M13 mutants.
- SDS-polyacrylamide gel electrophoresis and circular dichroism spectroscopy in membrane environments.
- Characterization of protein oligomeric states and conformational transitions.
Main Results:
- Increased Glycine and beta-branched residue content in the TM core reduced phage viability.
- Mutations to polar residues stabilized monomeric species.
- Mutations decreasing beta-branched content favored dimeric species.
- A specific mutation (Ile37-->Thr) led to protein polymerization.
- Protein conformational states (monomers, dimers, polymers) were mutation-dependent.
Conclusions:
- M13 coat protein TM residues are selected for conformational flexibility and regulation of protein-protein interactions, not solely hydrophobic anchoring.
- The TM segment's composition dictates its oligomeric state and thermal stability.
- Specific mutations reveal distinct roles for residues in TM core packing and function.