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Enrichment of Native and Recombinant Extracellular Vesicles of Mycobacteria
Published on: December 8, 2023
Structural basis of the PE-PPE protein interaction in Mycobacterium tuberculosis
Xin Chen1, Hiu-Fu Cheng1, Junwei Zhou1
1From the Centre for Protein Science and Crystallography, School of Life Sciences.
Abstract:
Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis, has developed multiple strategies to adapt to the human host. The five type VII secretion systems, ESX-1-5, direct the export of many virulence-promoting protein effectors across the complex mycobacterial cell wall. One class of ESX substrates is the PE-PPE family of proteins, which is unique to mycobacteria and essential for infection, antigenic variation, and host-pathogen interactions. The genome of Mtb encodes 168 PE-PPE proteins. Many of them are thought to be secreted through ESX-5 secretion system and to function in pairs. However, understanding of the specific pairing of PE-PPE proteins and their structure-function relationship is limited by the challenging purification of many PE-PPE proteins, and our knowledge of the PE-PPE interactions therefore has been restricted to the PE25-PPE41 pair and its complex with the ESX-5 secretion system chaperone EspG5. Here, we report the crystal structure of a new PE-PPE pair, PE8-PPE15, in complex with EspG5. Our structure revealed that the EspG5-binding sites on PPE15 are relatively conserved among Mtb PPE proteins, suggesting that EspG5-PPE15 represents a more typical model for EspG5-PPE interactions than EspG5-PPE41. A structural comparison with the PE25-PPE41 complex disclosed conformational changes in the four-helix bundle structure and a unique binding mode in the PE8-PPE15 pair. Moreover, homology-modeling and mutagenesis studies further delineated the molecular determinants of the specific PE-PPE interactions. These findings help develop an atomic algorithm of ESX-5 substrate recognition and PE-PPE pairing.
Insights
Researchers determined the structure of a PE-PPE protein pair from Mycobacterium tuberculosis, revealing insights into how these proteins interact and are secreted by the ESX-5 system, crucial for tuberculosis infection.
Area of Science:
- Microbiology
- Structural Biology
- Molecular Biology
Background:
- Mycobacterium tuberculosis (Mtb) employs type VII secretion systems (ESX-1-5) to export virulence proteins.
- The PE-PPE protein family is unique to mycobacteria, essential for infection, and often functions in pairs via ESX secretion.
- Previous studies were limited by difficulties in purifying PE-PPE proteins, restricting knowledge to the PE25-PPE41 complex.
Purpose of the Study:
- To elucidate the structure and interactions of a novel PE-PPE protein pair, PE8-PPE15, with the ESX-5 chaperone EspG5.
- To understand the molecular basis of PE-PPE pairing and ESX-5 substrate recognition.
Main Methods:
- X-ray crystallography was used to determine the structure of the PE8-PPE15-EspG5 complex.
- Homology modeling and mutagenesis studies were performed to analyze protein interactions.
- Structural comparisons were made with the known PE25-PPE41-EspG5 complex.
Main Results:
- The crystal structure of the PE8-PPE15-EspG5 complex was determined, revealing conserved EspG5-binding sites on PPE15.
- The PE8-PPE15 interaction with EspG5 differs structurally from the PE25-PPE41 interaction.
- Key molecular determinants for specific PE-PPE interactions were identified.
Conclusions:
- The PE8-PPE15-EspG5 structure provides a more general model for EspG5-PPE interactions.
- Understanding these interactions is vital for deciphering ESX-5 substrate recognition and PE-PPE pairing mechanisms.
- This work lays the foundation for an atomic algorithm for ESX-5 substrate recognition.
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