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Monitoring the Assembly of a Secreted Bacterial Virulence Factor Using Site-specific Crosslinking
Published on: December 17, 2013
The crystal structure of the EspB-EspK virulence factor-chaperone complex suggests an additional type VII secretion
Abril Gijsbers1, Mathias Eymery2, Ye Gao1
1Division of Nanoscopy, Maastricht Multimodal Molecular Imaging Institute (M4i), Maastricht University, Maastricht, the Netherlands.
Abstract:
Pathogenic species from the Mycobacterium genus are responsible for a number of adverse health conditions in humans and animals that threaten health security and the economy worldwide. Mycobacteria have up to five specialized secretion systems (ESX-1 to ESX-5) that transport virulence factors across their complex cell envelope to facilitate manipulation of their environment. In pathogenic species, these virulence factors influence the immune system's response and are responsible for membrane disruption and contributing to cell death. While structural details of these secretion systems have been recently described, gaps still remain in the structural understanding of the secretion mechanisms of most substrates. Here, we describe the crystal structure of Mycobacterium tuberculosis ESX-1 secretion-associated substrate EspB bound to its chaperone EspK. We found that EspB interacts with the C-terminal domain of EspK through its helical tip. Furthermore, cryogenic electron microscopy, size exclusion chromatography analysis, and small-angle X-ray scattering experiments show that EspK keeps EspB in its secretion-competent monomeric form and prevents its oligomerization. The structure presented in this study suggests an additional secretion mechanism in ESX-1, analogous to the chaperoning of proline-glutamate (PE)-proline-proline-glutamate (PPE) proteins by EspG, where EspK facilitates the secretion of EspB in Mycobacterium species.
Insights
Researchers elucidated the structure of Mycobacterium tuberculosis EspB bound to its chaperone EspK. This finding reveals how EspK maintains EspB in a state ready for secretion, crucial for virulence factor transport in pathogenic mycobacteria.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Pathogenic mycobacteria cause global health and economic threats.
- Specialized secretion systems (ESX-1 to ESX-5) transport virulence factors.
- Understanding substrate secretion mechanisms remains incomplete.
Purpose of the Study:
- Determine the crystal structure of Mycobacterium tuberculosis ESX-1 substrate EspB bound to its chaperone EspK.
- Investigate the role of EspK in EspB secretion and oligomerization.
Main Methods:
- X-ray crystallography
- Cryogenic electron microscopy (cryo-EM)
- Size exclusion chromatography (SEC)
- Small-angle X-ray scattering (SAXS)
Main Results:
- The crystal structure of EspB complexed with EspK was determined.
- EspB interacts with EspK's C-terminal domain via its helical tip.
- EspK maintains EspB as a monomer, preventing oligomerization and promoting secretion competence.
Conclusions:
- EspK acts as a chaperone for EspB, facilitating its secretion via the ESX-1 system.
- This mechanism is analogous to PE/PPE protein chaperoning by EspG.
- Provides structural insights into ESX-1 substrate secretion in Mycobacterium species.
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