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Membrane-SPINE: A Biochemical Tool to Identify Protein-protein Interactions of Membrane Proteins In Vivo
Published on: November 7, 2013
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.
Abstract:
Intramembrane metalloproteases (IMMPs) regulate diverse biological processes by cleaving membrane-associated substrates within the membrane or near its surface. SpoIVFB is an intramembrane metalloprotease of Bacillus subtilis that cleaves Pro-σK during endosporulation. Intramembrane metalloproteases have a broadly conserved NPDG motif, which in the structure of an archaeal enzyme is located in a short loop that interrupts a transmembrane segment facing the active site. The aspartate residue of the NPDG motif acts as a ligand of the zinc ion involved in catalysis. The functions of other residues in the short loop are less well understood. We found that the predicted short loop of SpoIVFB contains two highly conserved proline residues, P132 of the NPDG motif and P135. Mutational analysis revealed that both proline residues are important for Pro-σK cleavage in Escherichia coli engineered to synthesize the proteins. Substitutions for either residue also impaired the Pro-σK interaction with SpoIVFB in copurification assays. Disulfide cross-linking experiments showed that the predicted short loop of SpoIVFB is in proximity to the N-terminal pro-sequence region (Proregion) of Pro-σK. Alanine substitutions for N129 and P132 of the SpoIVFB NPDG motif reduced cross-linking between its predicted short loop and the Proregion more than a P135A substitution. Conversely, the SpoIVFB P135A substitution reduced Pro-σK cleavage more than the N129A and P132A substitutions during sporulation of B. subtilis. We conclude that all three conserved residues of SpoIVFB are important for substrate interaction and cleavage, and we propose that P135 is necessary to position D137 to act as a zinc ligand. IMPORTANCE Intramembrane metalloproteases (IMMPs) function in numerous signaling pathways. Bacterial IMMPs govern stress responses, including the sporulation of some species, thus enhancing the virulence and persistence of pathogens. Knowledge of IMMP-substrate interactions could aid therapeutic design, but structures of IMMP·substrate complexes are unknown. We examined the interaction of the IMMP SpoIVFB with its substrate Pro-σK, whose cleavage is required for Bacillus subtilis endosporulation. We found that conserved proline residues in a short loop predicted to interrupt a SpoIVFB transmembrane segment are important for Pro-σK binding and cleavage. The corresponding residues of the Escherichia coli IMMP RseP have also been shown to be important for substrate interaction and cleavage, suggesting that this is a broadly conserved feature of IMMPs, potentially suitable as a therapeutic target.
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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