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Published on: April 5, 2017
Inactivation of tesA reduces cell wall lipid production and increases drug susceptibility in mycobacteria
Sivagami Sundaram Chavadi1, Uthamaphani R Edupuganti, Olivia Vergnolle
1Biology Department, Brooklyn College (City University of New York), Brooklyn, New York 11210, USA.
Abstract:
Phthiocerol dimycocerosates (PDIMs) and phenolic glycolipids (PGLs) are structurally related lipids noncovalently bound to the outer cell wall layer of Mycobacterium tuberculosis, Mycobacterium leprae, and several opportunistic mycobacterial human pathogens. PDIMs and PGLs are important effectors of virulence. Elucidation of the biosynthesis of these complex lipids will not only expand our understanding of mycobacterial cell wall biosynthesis, but it may also illuminate potential routes to novel therapeutics against mycobacterial infections. We report the construction of an in-frame deletion mutant of tesA (encoding a type II thioesterase) in the opportunistic human pathogen Mycobacterium marinum and the characterization of this mutant and its corresponding complemented strain control in terms of PDIM and PGL production. The growth and antibiotic susceptibility of these strains were also probed and compared with the parental wild-type strain. We show that deletion of tesA leads to a mutant that produces only traces of PDIMs and PGLs, has a slight growth yield increase and displays a substantial hypersusceptibility to several antibiotics. We also provide a robust model for the three-dimensional structure of M. marinum TesA (TesAmm) and demonstrate that a Ser-to-Ala substitution in the predicted catalytic Ser of TesAmm renders a mutant that recapitulates the phenotype of the tesA deletion mutant. Overall, our studies demonstrate a critical role for tesA in mycobacterial biology, advance our understanding of the biosynthesis of an important group of polyketide synthase-derived mycobacterial lipids, and suggest that drugs aimed at blocking PDIM and/or PGL production might synergize with antibiotic therapy in the control of mycobacterial infections.
Insights
Deletion of the tesA gene in Mycobacterium marinum significantly reduces phthiocerol dimycocerosates (PDIMs) and phenolic glycolipids (PGLs) production. This tesA deletion mutant shows increased antibiotic susceptibility, suggesting new therapeutic targets.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Phthiocerol dimycocerosates (PDIMs) and phenolic glycolipids (PGLs) are crucial lipids in the cell wall of pathogenic mycobacteria.
- These lipids are essential for virulence and understanding their biosynthesis is key to developing new treatments.
Purpose of the Study:
- To investigate the role of the tesA gene in the biosynthesis of PDIMs and PGLs in Mycobacterium marinum.
- To characterize the impact of tesA deletion on the growth, antibiotic susceptibility, and lipid production of M. marinum.
Main Methods:
- Construction of an in-frame deletion mutant of the tesA gene in Mycobacterium marinum.
- Characterization of PDIM and PGL production in the mutant and complemented strains.
- Assessment of growth rates and antibiotic susceptibility profiles.
- 3D structural modeling of M. marinum TesA (TesAmm) and site-directed mutagenesis.
Main Results:
- Deletion of tesA resulted in a significant reduction of PDIM and PGL production.
- The tesA deletion mutant exhibited a slight increase in growth yield and substantial hypersusceptibility to multiple antibiotics.
- Mutagenesis of the catalytic serine residue in TesAmm mimicked the phenotype of the tesA deletion mutant.
Conclusions:
- The tesA gene plays a critical role in the biosynthesis of PDIMs and PGLs in mycobacteria.
- Targeting PDIM/PGL production could be a viable strategy to enhance antibiotic efficacy against mycobacterial infections.
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