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Identification of Virulence Markers of Mycobacterium abscessus for Intracellular Replication in Phagocytes
Published on: September 27, 2018
ESAT-6 undergoes self-association at phagosomal pH and an ESAT-6-specific nanobody restricts M. tuberculosis growth
Timothy A Bates1, Mila Trank-Greene1, Xammy Nguyenla1
1Department of Molecular Microbiology and Immunology, Oregon Health & Sciences University, Portland, United States.
Abstract:
Mycobacterium tuberculosis (Mtb) is known to survive within macrophages by compromising the integrity of the phagosomal compartment in which it resides. This activity primarily relies on the ESX-1 secretion system, predominantly involving the protein duo ESAT-6 and CFP-10. CFP-10 likely acts as a chaperone, while ESAT-6 likely disrupts phagosomal membrane stability via a largely unknown mechanism. we employ a series of biochemical analyses, protein modeling techniques, and a novel ESAT-6-specific nanobody to gain insight into the ESAT-6's mode of action. First, we measure the binding kinetics of the tight 1:1 complex formed by ESAT-6 and CFP-10 at neutral pH. Subsequently, we demonstrate a rapid self-association of ESAT-6 into large complexes under acidic conditions, leading to the identification of a stable tetrameric ESAT-6 species. Using molecular dynamics simulations, we pinpoint the most probable interaction interface. Furthermore, we show that cytoplasmic expression of an anti-ESAT-6 nanobody blocks Mtb replication, thereby underlining the pivotal role of ESAT-6 in intracellular survival. Together, these data suggest that ESAT-6 acts by a pH-dependent mechanism to establish two-way communication between the cytoplasm and the Mtb-containing phagosome.
Insights
Mycobacterium tuberculosis survives in macrophages using the ESAT-6 protein, which disrupts phagosomal membranes. This study reveals ESAT-6
Area of Science:
- Microbiology
- Cell Biology
- Structural Biology
Background:
- Mycobacterium tuberculosis (Mtb) evades host defenses by surviving within macrophages.
- Mtb compromises phagosomal integrity, crucial for intracellular survival.
- The ESX-1 secretion system, particularly the ESAT-6/CFP-10 complex, is key to this process.
Purpose of the Study:
- To elucidate the mechanism by which ESAT-6 disrupts phagosomal membranes.
- To investigate the role of pH and protein interactions in ESAT-6 function.
Main Methods:
- Biochemical analyses to measure protein binding kinetics.
- Protein modeling and molecular dynamics simulations.
- Development and use of an ESAT-6-specific nanobody.
Main Results:
- ESAT-6 and CFP-10 form a stable 1:1 complex at neutral pH.
- ESAT-6 self-associates into tetrameric complexes under acidic conditions.
- An anti-ESAT-6 nanobody inhibits Mtb replication within macrophages.
Conclusions:
- ESAT-6 mediates phagosomal membrane disruption via a pH-dependent mechanism.
- ESAT-6 facilitates communication between the Mtb-containing phagosome and the cytoplasm.
- ESAT-6 is a critical virulence factor for Mtb intracellular survival.

