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Updated: Jul 3, 2025

Reconstitution of Msp1 Extraction Activity with Fully Purified Components
Published on: August 10, 2021
The C-terminus is essential for the stability of the mycobacterial channel protein MspA
Mikhail Pavlenok1, Rashmi Ravindran Nair1, R Curtis Hendrickson1
1Department of Microbiology, University of Alabama at Birmingham, Birmingham, Alabama, USA.
Abstract:
Outer membrane proteins perform essential functions in uptake and secretion processes in bacteria. MspA is an octameric channel protein in the outer membrane of Mycobacterium smegmatis and is structurally distinct from any other known outer membrane protein. MspA is the founding member of a family with more than 3000 homologs and is one of the most widely used proteins in nanotechnological applications due to its advantageous pore structure and extraordinary stability. While a conserved C-terminal signal sequence is essential for folding and protein assembly in the outer membrane of Gram-negative bacteria, the molecular determinants of these processes are unknown for MspA. In this study, we show that mutation and deletion of methionine 183 in the highly conserved C-terminus of MspA and mutation of the conserved tryptophan 40 lead to a complete loss of protein in heat extracts of M. smegmatis. Swapping these residues partially restores the heat stability of MspA indicating that methionine 183 and tryptophan 40 form a conserved sulfur-π electron interaction, which stabilizes the MspA monomer. Flow cytometry showed that all MspA mutants are surface-accessible demonstrating that oligomerization and membrane integration in M. smegmatis are not affected. Thus, the conserved C-terminus of MspA is essential for its thermal stability, but it is not required for protein assembly in its native membrane, indicating that this process is mediated by a mechanism distinct from that in Gram-negative bacteria. These findings will benefit the rational design of MspA-like pores to tailor their properties in current and future applications.
Insights
The MspA protein
Area of Science:
- Bacterial outer membrane protein structure and function
- Nanotechnology applications of MspA protein
- Molecular mechanisms of protein stability
Background:
- Outer membrane proteins are crucial for bacterial transport.
- MspA is a unique, stable outer membrane protein used in nanotechnology.
- The molecular basis for MspA's stability and assembly is unknown.
Purpose of the Study:
- To investigate the molecular determinants of MspA's thermal stability and membrane assembly.
- To identify key residues in the MspA C-terminus responsible for its stability.
- To compare MspA assembly mechanisms with those in Gram-negative bacteria.
Main Methods:
- Site-directed mutagenesis of MspA (M183 and W40 residues).
- Analysis of MspA protein levels in heat extracts of Mycobacterium smegmatis.
- Flow cytometry to assess MspA surface accessibility and membrane integration.
Main Results:
- Mutations in M183 and W40 residues abolish MspA thermal stability.
- A sulfur-π electron interaction between M183 and W40 stabilizes MspA monomers.
- MspA mutants remain surface-accessible, indicating assembly is independent of C-terminal stability determinants.
Conclusions:
- The MspA C-terminus is critical for thermal stability, not assembly in its native membrane.
- MspA assembly in Mycobacterium smegmatis utilizes mechanisms distinct from Gram-negative bacteria.
- Findings aid in designing MspA-based nanomaterials with tailored properties.
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