Related Experiment Video
Updated: Dec 26, 2025

Monitoring the Assembly of a Secreted Bacterial Virulence Factor Using Site-specific Crosslinking
Published on: December 17, 2013
Modification of a PE/PPE substrate pair reroutes an Esx substrate pair from the mycobacterial ESX-1 type VII
Merel P M Damen1, Trang H Phan1, Roy Ummels2
1Section Molecular Microbiology, Amsterdam Institute of Molecular and Life Sciences, Vrije Universiteit Amsterdam, 1081 HV Amsterdam, The Netherlands.
Abstract:
Bacterial type VII secretion systems secrete a wide range of extracellular proteins that play important roles in bacterial viability and in interactions of pathogenic mycobacteria with their hosts. Mycobacterial type VII secretion systems consist of five subtypes, ESX-1-5, and have four substrate classes, namely, Esx, PE, PPE, and Esp proteins. At least some of these substrates are secreted as heterodimers. Each ESX system mediates the secretion of a specific set of Esx, PE, and PPE proteins, raising the question of how these substrates are recognized in a system-specific fashion. For the PE/PPE heterodimers, it has been shown that they interact with their cognate EspG chaperone and that this chaperone determines the designated secretion pathway. However, both structural and pulldown analyses have suggested that EspG cannot interact with the Esx proteins. Therefore, the determining factor for system specificity of the Esx proteins remains unknown. Here, we investigated the secretion specificity of the ESX-1 substrate pair EsxB_1/EsxA_1 in Mycobacterium marinum Although this substrate pair was hardly secreted when homologously expressed, it was secreted when co-expressed together with the PE35/PPE68_1 pair, indicating that this pair could stimulate secretion of the EsxB_1/EsxA_1 pair. Surprisingly, co-expression of EsxB_1/EsxA_1 with a modified PE35/PPE68_1 version that carried the EspG5 chaperone-binding domain, previously shown to redirect this substrate pair to the ESX-5 system, also resulted in redirection and co-secretion of the Esx pair via ESX-5. Our results suggest a secretion model in which PE35/PPE68_1 determines the system-specific secretion of EsxB_1/EsxA_1.
Insights
Mycobacterial type VII secretion systems (ESX) use PE35/PPE68_1 proteins to specifically secrete Esx proteins, revealing a novel secretion pathway mechanism for bacterial protein export.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Protein Secretion
Background:
- Bacterial type VII secretion systems (ESX) are crucial for mycobacterial interactions with hosts.
- ESX systems (ESX-1-5) secrete Esx, PE, PPE, and Esp proteins, often as heterodimers.
- The system-specific recognition of Esx proteins remains poorly understood, unlike PE/PPE heterodimers which utilize EspG chaperones.
Purpose of the Study:
- To investigate the secretion specificity of the ESX-1 substrate pair EsxB_1/EsxA_1 in *Mycobacterium marinum*.
- To determine the role of PE/PPE proteins in the system-specific secretion of Esx proteins.
Main Methods:
- Investigated the secretion of EsxB_1/EsxA_1 in *Mycobacterium marinum* under various co-expression conditions.
- Utilized homologous and heterologous co-expression of Esx and PE/PPE substrate pairs.
- Employed a modified PE35/PPE68_1 protein with a redirected chaperone-binding domain (EspG5).
Main Results:
- The ESX-1 substrate pair EsxB_1/EsxA_1 showed limited secretion when expressed alone.
- Co-expression with the PE35/PPE68_1 pair significantly stimulated the secretion of EsxB_1/EsxA_1.
- Co-expression with a modified PE35/PPE68_1 (carrying EspG5) redirected EsxB_1/EsxA_1 secretion to the ESX-5 system.
Conclusions:
- The PE35/PPE68_1 protein pair plays a critical role in determining the system-specific secretion of the Esx substrate pair EsxB_1/EsxA_1.
- This suggests a model where PE/PPE proteins act as specificity factors for Esx protein secretion via ESX systems.
- The findings provide new insights into the regulatory mechanisms of mycobacterial type VII secretion.

