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Identification of Virulence Markers of Mycobacterium abscessus for Intracellular Replication in Phagocytes
Published on: September 27, 2018
A Division-Associated Envelope Protein, MAB_2363, Drives Intrinsic Resistance and Virulence in Mycobacterium
Lijie Li1,2,3, Md Shah Alam2,3,4, Chunyu Li2,3,4
1School of Basic Medical Sciences, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei 230000, China.
Abstract:
Mycobacterium abscessus exhibits intrinsic resistance to conventional antibiotics, significantly limiting treatment options. Our previous studies established that MAB_2362 (SteA) is a key regulator of cell division that contributes to intrinsic resistance and virulence. Considering that SteA-like proteins often act alongside SteB counterparts, we hypothesized that the adjacent gene MAB_2363 encodes the corresponding SteB-like division regulator. In this study, we found that deletion of MAB_2363 significantly increased susceptibility to multiple antibiotics and disrupted cell wall permeability. Microscopy revealed pronounced cell division defects in the mutant, including elongated cell morphology and multiple septa. Subcellular localization of a GFP-MAB_2363 fusion protein demonstrated its enrichment at division septa, confirming its direct involvement in cell division. Furthermore, deletion of MAB_2363 led to attenuated virulence, as evidenced by reduced bacterial survival in macrophages and murine infection models. To assess its functional relation with MAB_2362, we compared the single-deletion mutant of MAB_2363 with the single-deletion mutant of MAB_2362 and the double-deletion mutant of MAB_2362-MAB_2363. Notably, the phenotypes of the MAB_2363 mutant, including cell division defects, antibiotic susceptibility, and virulence, were markedly milder than those of the other two mutants. Collectively, these findings indicate that MAB_2363 functions as a secondary but essential division-associated factor that operates during cell division, thereby influencing intrinsic resistance and virulence in M. abscessus.
Insights
The study identifies MAB_2363 as a secondary regulator of cell division in Mycobacterium abscessus (M. abscessus). Deleting MAB_2363 increases antibiotic susceptibility and reduces virulence, impacting M. abscessus treatment strategies.
Area of Science:
- Microbiology
- Bacterial cell division
- Antibiotic resistance
Background:
- Mycobacterium abscessus (M. abscessus) possesses intrinsic antibiotic resistance, complicating treatment.
- MAB_2362 (SteA) is a known cell division regulator linked to M. abscessus resistance and virulence.
- SteA-like proteins often function with SteB counterparts, suggesting MAB_2363's potential role.
Purpose of the Study:
- To investigate the function of MAB_2363, a putative SteB-like protein, in M. abscessus.
- To determine MAB_2363's role in cell division, antibiotic resistance, and virulence.
- To elucidate the functional relationship between MAB_2363 and MAB_2362 (SteA).
Main Methods:
- Gene deletion of MAB_2363 in M. abscessus.
- Antibiotic susceptibility testing and cell wall permeability assays.
- Microscopy for cell morphology and division analysis.
- Subcellular localization of GFP-MAB_2363 fusion protein.
- Macrophage survival assays and murine infection models.
Main Results:
- MAB_2363 deletion increased antibiotic susceptibility and disrupted cell wall permeability.
- Mutants exhibited significant cell division defects, including elongated cells and multiple septa.
- GFP-MAB_2363 localized to division septa, confirming its role in cell division.
- MAB_2363 deletion attenuated M. abscessus virulence in vitro and in vivo.
- Phenotypes of MAB_2363 deletion were milder than those of MAB_2362 or double deletion mutants.
Conclusions:
- MAB_2363 is a secondary, essential division-associated factor in M. abscessus.
- MAB_2363 influences intrinsic antibiotic resistance and virulence.
- MAB_2363 acts in concert with MAB_2362 to regulate cell division, resistance, and virulence.
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