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The regulatory functions of ESX-1 substrates, EspE and EspF, are separable from secretion
Rebecca J Prest1, Konstantin V Korotkov2, Patricia A Champion1,3
1Department of Biological Sciences, Eck Institute for Global Health, University of Notre Dame, Notre Dame, Indiana, USA.
Abstract:
Pathogenic mycobacteria are a significant global health burden. The ESX-1 secretion system is essential for mycobacterial pathogenesis. The secretion of ESX-1 substrates is required for phagosomal lysis, which allows the bacteria to enter the macrophage cytoplasm, induce a Type I IFN response, and spread to new host cells. EspE and EspF are dual-functioning ESX-1 substrates. Inside the mycobacterial cell, they regulate transcription of ESX-1-associated genes. Following secretion, EspE and EspF are essential for lytic activity. The link between EspE/F secretion and regulatory function has not been investigated. We investigated the relationship between EspE and EspF using molecular genetics in Mycobacterium marinum, a non-tuberculous mycobacterial species that serves as an established model for ESX-1 secretion and function in Mycobacterium tuberculosis. Our data support that EspE and EspF, which require each other for secretion, directly interact. The disruption of the predicted protein-protein interaction abrogates hemolytic activity and secretion but does not impact their gene regulatory activities in the mycobacterial cell. In addition, we predict a direct protein-protein interaction between the EsxA/EsxB heterodimer and EspF. Our data support that the EspF/EsxA interaction is also required for hemolytic activity and EspE secretion. Our study sheds light on the intricate molecular mechanisms governing the interactions between ESX-1 substrates, regulatory function, and ESX-1 secretion, moving the field forward.IMPORTANCETuberculosis (TB), caused by Mycobacterium tuberculosis, is a historical and pervasive disease responsible for millions of deaths annually. The rise of antibiotic and treatment-resistant TB, as well as the rise of infection by non-tuberculous mycobacterial species, calls for a better understanding of pathogenic mycobacteria. The ESX-1 secreted substrates, EspE and EspF, are required for mycobacterial virulence and may be responsible for phagosomal lysis. This study focuses on the mechanism of EspE and EspF secretion from the mycobacterial cell.
Insights
EspE and EspF proteins are essential for pathogenic mycobacteria virulence. These proteins interact with each other and with EsxA/EsxB for secretion and virulence, but not for gene regulation.
Area of Science:
- Microbiology
- Molecular Biology
- Immunology
Background:
- Pathogenic mycobacteria pose a significant global health challenge, with tuberculosis (TB) being a major cause of mortality.
- The ESX-1 secretion system is crucial for mycobacterial pathogenesis, enabling bacterial spread and host immune response modulation.
- EspE and EspF are key ESX-1 substrates with dual roles in gene regulation and virulence.
Purpose of the Study:
- To investigate the relationship between EspE and EspF secretion and their regulatory functions.
- To elucidate the molecular mechanisms governing ESX-1 substrate interactions and secretion.
- To understand the role of EspE and EspF in mycobacterial pathogenesis using *Mycobacterium marinum* as a model.
Main Methods:
- Molecular genetics techniques were employed in *Mycobacterium marinum*.
- Analysis of protein-protein interactions between ESX-1 substrates.
- Assessment of hemolytic activity and gene regulatory function.
Main Results:
- EspE and EspF require each other for secretion and directly interact.
- Disruption of the EspE/F interaction abrogates hemolytic activity and secretion but not gene regulation.
- A direct interaction between EspF and the EsxA/EsxB heterodimer is essential for hemolytic activity and EspE secretion.
Conclusions:
- EspE and EspF form a complex essential for ESX-1 secretion and virulence.
- The interaction between EspF and EsxA/EsxB is critical for ESX-1 mediated pathogenesis.
- This study advances the understanding of ESX-1 secretion system regulation and substrate interplay in pathogenic mycobacteria.
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