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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.

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.

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