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.

The FEBS Journal
|October 8, 2017
PubMed

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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