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Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Dissection of the function of the RmpM periplasmic protein from Neisseria meningitidis
Sunil Maharjan1,2, Muhammad Saleem2, Ian M Feavers1
1National Institute for Biological Standards and Control, South Mimms, Hertfordshire, EN6 3QGUK.
Abstract:
RmpM is a periplasmic protein from Neisseria meningitidis that comprises an N-terminal domain (residues 1-47) and a separate globular C-terminal domain (residues 65-219) responsible for binding to peptidoglycan. Here we show, through the use of size exclusion chromatography and pull-down assays, that a recombinant N-terminal fragment of RmpM binds to both the major outer membrane porins, PorA and PorB. Analysis by semi-native SDS-PAGE established that both recombinant full-length RmpM and an N-terminal fragment, but not the C-terminal peptidoglycan-binding domain, were sufficient to stabilize the PorA and PorB oligomeric complexes. Evidence from binding assays indicated that the meso-diaminopimelate moiety plays an important role in peptidoglycan recognition by RmpM. Site-directed mutagenesis showed that two highly conserved residues, Asp120 and Arg135, play an important role in peptidoglycan binding. The yield of outer membrane vesicles, which have been used extensively as a vaccine against N. meningitidis, was considerably higher in an N. meningitidis strain expressing a truncated N-terminal fragment of RmpM (ΔC-term rmpM) than in the WT strain. The native oligomeric state of the PorA/PorB complexes was maintained in this strain. We conclude that the dual functions of RmpM are independent, and that it is possible to use this knowledge to engineer a strain with higher yield of outer membrane vesicles, whilst preserving PorA and PorB, which are key protective antigens, in their native oligomeric state.
Insights
The RmpM protein from Neisseria meningitidis stabilizes outer membrane porins PorA and PorB. Engineering RmpM enhances outer membrane vesicle yield for vaccines while maintaining protective antigens.
Area of Science:
- Microbiology
- Structural Biology
- Vaccine Development
Background:
- Neisseria meningitidis RmpM is a periplasmic protein with N-terminal and C-terminal domains.
- The C-terminal domain binds peptidoglycan, crucial for bacterial cell wall integrity.
Purpose of the Study:
- To investigate the interaction of RmpM domains with Neisseria meningitidis outer membrane porins PorA and PorB.
- To explore the role of RmpM in stabilizing porin complexes and its implications for vaccine production.
Main Methods:
- Size exclusion chromatography and pull-down assays to study RmpM-porin interactions.
- Semi-native SDS-PAGE to analyze the stability of porin complexes.
- Site-directed mutagenesis to identify key residues in peptidoglycan binding.
Main Results:
- The N-terminal RmpM fragment binds to PorA and PorB, stabilizing their oligomeric complexes.
- Specific residues (Asp120, Arg135) are critical for RmpM's peptidoglycan binding.
- A truncated RmpM strain yielded more outer membrane vesicles with intact PorA/PorB complexes.
Conclusions:
- RmpM possesses independent functions for porin stabilization and peptidoglycan binding.
- Engineering RmpM offers a strategy to increase outer membrane vesicle vaccine yield while preserving key antigens.
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