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Updated: Jan 30, 2026

Transmembrane Domain Oligomerization Propensity determined by ToxR Assay
Published on: May 26, 2011
Protease domain and transmembrane domain of the type VII secretion mycosin protease determine system-specific
Vincent J C van Winden1, Merel P M Damen2, Roy Ummels1
1From the Department of Medical Microbiology and Infection Control, Vrije Universiteit Amsterdam, Amsterdam UMC, 1081 HZ Amsterdam, The Netherlands and.
Abstract:
Mycobacteria use type VII secretion systems to secrete proteins across their highly hydrophobic diderm cell envelope. Pathogenic mycobacteria, such as Mycobacterium tuberculosis and Mycobacterium marinum, have up to five of these systems, named ESX-1 to ESX-5. Most of these systems contain a set of five conserved membrane components, of which the four Ecc proteins form the core membrane-embedded secretion complex. The fifth conserved membrane protein, mycosin protease (MycP), is not part of the core complex but is essential for secretion, as it stabilizes this membrane complex. Here we investigated which MycP domains are required for this stabilization by producing hybrid constructs between MycP1 and MycP5 in M. marinum and analyzed their effect on ESX-1 and ESX-5 secretion. We found that both the protease and transmembrane domain are required for the ESX system-specific function of mycosins. In addition, we observed that the transmembrane domain strongly affects MycP protein levels. We also show that the extended loops 1 and 2 in the protease domain are probably primarily involved in MycP stability, whereas loop 3 and the MycP5-specific loop 5 are dispensable. The atypical propeptide, or N-terminal extension, is required only for MycP stability. Finally, we show that the protease domain of MycPP1, encoded by the esx-P1 locus on the pRAW plasmid, is functionally redundant to the protease domain of MycP5 These results provide the first insight into the regions of mycosins involved in interaction with and stabilization of their respective ESX complexes.
Insights
Mycobateria use mycosin proteases (MycP) to stabilize essential type VII secretion systems (ESX). Both protease and transmembrane domains are crucial for MycP function and ESX secretion in *Mycobacterium marinum*.
Area of Science:
- Microbiology
- Molecular Biology
- Protein Biochemistry
Background:
- Mycobacteria possess complex cell envelopes requiring specialized secretion systems.
- Type VII secretion systems (ESX) are crucial for virulence and protein export in pathogenic mycobacteria.
- Mycosin proteases (MycP) are essential, non-core components that stabilize ESX membrane complexes.
Purpose of the Study:
- To identify specific domains of mycosin proteases (MycP) essential for stabilizing ESX secretion systems.
- To investigate the role of different MycP domains in ESX system-specific function and protein stability.
Main Methods:
- Production of hybrid constructs between MycP1 and MycP5 in *Mycobacterium marinum*.
- Analysis of hybrid construct effects on ESX-1 and ESX-5 secretion.
- Assessment of domain requirements for MycP stabilization and protein levels.
Main Results:
- Both protease and transmembrane domains of MycP are required for ESX system-specific function.
- The transmembrane domain significantly influences MycP protein levels.
- Specific loops within the protease domain and the N-terminal extension are critical for MycP stability.
Conclusions:
- The study elucidates the domain-specific roles of MycP in ESX complex stabilization.
- Identifies key regions in MycP essential for interaction with and stabilization of ESX secretion machinery.
- Provides insights into the functional redundancy between different MycP protease domains.
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