Conserved Proline Residues of Bacillus subtilis Intramembrane Metalloprotease SpoIVFB Are Important for Substrate

Sandra Olenic1, Fiona Buchanan1, Jordyn VanPortfliet1

  • 1Department of Biochemistry and Molecular Biology, Michigan State Universitygrid.17088.36, East Lansing, Michigan, USA.

Journal of Bacteriology
|January 10, 2022
PubMed

Insights

Conserved proline residues in intramembrane metalloproteases like SpoIVFB are crucial for cleaving substrates such as Pro-σK. These findings highlight conserved mechanisms in bacterial IMMP function and substrate interaction.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Microbiology

Background:

  • Intramembrane metalloproteases (IMMPs) are enzymes that cleave membrane-associated substrates within or near the cell membrane.
  • SpoIVFB, a Bacillus subtilis IMMP, is essential for cleaving Pro-σK during endosporulation, a critical developmental process.
  • The conserved NPDG motif in IMMPs plays a role in catalysis, but the function of other residues in associated loops remains less understood.

Purpose of the Study:

  • To investigate the role of conserved proline residues in the short loop of SpoIVFB, specifically P132 and P135.
  • To elucidate the mechanism by which SpoIVFB interacts with and cleaves its substrate, Pro-σK.
  • To determine the broader implications of these findings for conserved features of intramembrane metalloproteases.

Main Methods:

  • Site-directed mutagenesis was used to create proline substitutions in SpoIVFB (N129A, P132A, P135A).
  • Pro-σK cleavage was assessed in engineered Escherichia coli and during Bacillus subtilis sporulation.
  • Copurification assays and disulfide cross-linking experiments were employed to study SpoIVFB-Pro-σK interactions.

Main Results:

  • Mutational analysis revealed that both P132 and P135 are critical for Pro-σK cleavage and interaction with SpoIVFB.
  • Disulfide cross-linking indicated that the SpoIVFB loop is in proximity to the Pro-σK pro-sequence, with N129A and P132A substitutions reducing this interaction.
  • The P135A substitution significantly impaired Pro-σK cleavage, suggesting a specific role for P135 in positioning catalytic residues.

Conclusions:

  • All three conserved residues (N129, P132, P135) in the SpoIVFB loop are essential for substrate binding and efficient cleavage.
  • Residue P135 is proposed to be vital for correctly positioning the catalytic aspartate (D137) for zinc ligation.
  • The findings suggest a conserved mechanism for substrate interaction and cleavage across bacterial IMMPs, potentially offering therapeutic targets.

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