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Updated: Feb 21, 2026

Enrichment of Native and Recombinant Extracellular Vesicles of Mycobacteria
Published on: December 8, 2023
Crystal structure of Mycobacterium tuberculosis VapC20 toxin and its interactions with cognate antitoxin, VapB20,
Amar Deep1, Soni Kaundal1, Sakshi Agarwal2
1Structural Biology Laboratory, G. N. Ramachandran Protein Centre, Council of Scientific and Industrial Research-Institute of Microbial Technology (CSIR-IMTECH), Chandigarh, India.
Abstract:
VapBCs, virulence-associated proteins, are the most abundant type II toxin-antitoxin (TA) systems in prokaryotes. Under normal conditions, toxin and antitoxin interact to form a heterooctameric complex, which upon binding to operator sites, inhibits their own expression. Under stress conditions, the VapB antitoxin is degraded by cellular proteases to release a free VapC toxin, which in turn inhibits cell growth mainly by targeting protein translation. However, the intermediate steps involved in the assembly of the heterooctameric complex have not been resolved. Here, we report a 1.75 Å resolution crystal structure of VapC20, a Sarcin-Ricin loop cleaving toxin from type II TA system of Mycobacterium tuberculosis. Using analytical ultracentrifugation (AUC) studies, we show that VapC20 exists as a homodimer in solution. The structural analysis of VapC homologs further suggests that VapCs form homodimers. We demonstrate that VapC20 is an obligate homodimer, and its self-association is critical for its folding and activity. Surface plasmon resonance experiments suggest that VapC20 interacts with its cognate antitoxin VapB20 to form a stable complex with nanomolar affinity. A high association rate coupled with a very slow dissociation rate ensures minimal toxicity under normal growth conditions. AUC studies reveal that VapB20 also exists as a homodimer in solution and further associates with VapC20 dimers to form heterotetramers and heterooctamers in a concentration-dependent manner. The results presented here provide valuable insights into the assembly of VapBC family of toxins which is essential for their function and regulation.
Database:
Structural data are available in the PDB under the accession numbers 5WZF and 5WZ4.
Insights
The VapBC toxin-antitoxin system
Area of Science:
- Molecular biology
- Structural biology
- Microbiology
Background:
- Type II toxin-antitoxin (TA) systems, such as VapBC, are crucial for prokaryotic survival and virulence.
- VapBC systems regulate gene expression via toxin-antitoxin interactions, but assembly intermediates remain unclear.
Purpose of the Study:
- To elucidate the assembly mechanism of the VapBC toxin-antitoxin system from Mycobacterium tuberculosis.
- To determine the structural basis for VapC20 toxin self-association and interaction with its antitoxin VapB20.
Main Methods:
- X-ray crystallography at 1.75 Å resolution to determine the VapC20 structure.
- Analytical ultracentrifugation (AUC) to study VapC20 and VapB20 oligomerization in solution.
- Surface plasmon resonance (SPR) to quantify VapC20-VapB20 binding kinetics.
Main Results:
- VapC20 forms a stable homodimer essential for its folding and activity.
- VapB20 also exists as a homodimer, forming heterotetramers and heterooctamers with VapC20 dimers in a concentration-dependent manner.
- VapC20 and VapB20 form a stable complex with nanomolar affinity, characterized by rapid association and slow dissociation.
Conclusions:
- The VapBC system assembly involves VapC and VapB homodimers forming higher-order complexes.
- Self-association of VapC20 is critical for its stability and function.
- Understanding VapBC assembly provides insights into TA system regulation and potential therapeutic targets.
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