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Modeling Tuberculosis in Mycobacterium marinum Infected Adult Zebrafish
Published on: October 8, 2018
Arabinogalactan enhances Mycobacterium marinum virulence by suppressing host innate immune responses
Ye-Yu Li1,2, Han-Mei Liu1,2, Decheng Wang3
1Department of Microbiology, School of Life Science, Fudan University, Shanghai, China.
Abstract:
Arabinogalactan (AG) participates in forming the cell wall core of mycobacteria, a structure known as the mAGP complex. Few studies have reported the virulence of inartificial AG or its interaction with the host immune system. Using clustered regularly interspaced short palindromic repeats interference gene editing technology, conditional Mycobacterium marinum mutants were constructed with a low expression of embA or glfT2 (EmbA_KD or GlfT2_KD), which are separately involved in the biosynthesis of AG arabinose and galactose domains. High-performance gel permeation chromatography and high-performance liquid chromatography assays confirmed that the EmbA_KD strain showed a remarkable decrease in AG content with fragmentary arabinose chains, and the GlfT2_KD strain displayed less reduction in content with cut-down galactose chains. Based on transmission and scanning electron microscopy observations, the cell walls of the two mutants were found to be dramatically thickened, and the boundaries of different layers were more distinct. Phenotypes including the over-secretion of extracellular substances and enhanced spreading motility with a concomitant decreased resistance to ethambutol appeared in the EmbA_KD strain. The EmbA_KD and GlfT2_KD strains displayed limited intracellular proliferation after infecting murine J774A.1 macrophages. The disease progression infected with the EmbA_KD or GlfT2_KD strain significantly slowed down in zebrafish/murine tail infection models as well. Through transcriptome profiling, macrophages infected by EmbA_KD/GlfT2_KD strains showed enhanced oxidative metabolism. The cell survival measured using the CCK8 assay of macrophages exposed to the EmbA_KD strain was upregulated and consistent with the pathway enrichment analysis of differentially expressed genes in terms of cell cycle/apoptosis. The overexpression of C/EBPβ and the increasing secretion of proinflammatory cytokines were validated in the macrophages infected by the EmbA_KD mutant. In conclusion, the AG of Mycobacterium appears to restrain the host innate immune responses to enhance intracellular proliferation by interfering with oxidative metabolism and causing macrophage death. The arabinose chains of AG influence the Mycobacterium virulence and pathogenicity to a greater extent.
Insights
Arabinogalactan in mycobacteria restrains host immunity, enhancing bacterial spread. Disrupting its arabinose chains significantly reduces virulence and impacts macrophage response.
Area of Science:
- Microbiology and Immunology
- Cell Wall Biosynthesis
- Host-Pathogen Interactions
Background:
- Arabinogalactan (AG) is a key component of the mycobacterial cell wall, forming the mAGP complex.
- The role of AG in mycobacterial virulence and host immune system interaction remains largely unexplored.
- Understanding AG's function is crucial for developing novel anti-mycobacterial strategies.
Purpose of the Study:
- To investigate the impact of altered arabinogalactan biosynthesis on *Mycobacterium marinum* virulence.
- To elucidate the interaction between modified AG and the host immune system.
- To determine the specific contribution of AG's arabinose and galactose domains to pathogenicity.
Main Methods:
- Construction of conditional *Mycobacterium marinum* mutants (EmbA_KD, GlfT2_KD) with reduced expression of AG biosynthesis genes using CRISPR interference.
- Biochemical analysis (HPGPC, HPLC) to quantify AG content and chain structure.
- Microscopy (TEM, SEM) to examine cell wall morphology.
- In vitro infection models (macrophages) and in vivo models (zebrafish, mice) to assess virulence and disease progression.
- Transcriptome profiling and molecular assays to analyze host immune responses.
Main Results:
- EmbA_KD and GlfT2_KD mutants showed significantly reduced AG content with altered arabinose and galactose chains, respectively.
- Mutant cell walls were thickened, and mutants exhibited decreased intracellular proliferation and attenuated virulence in zebrafish/murine models.
- Infected macrophages displayed enhanced oxidative metabolism, increased cell survival, C/EBPβ overexpression, and pro-inflammatory cytokine secretion.
Conclusions:
- Mycobacterial arabinogalactan actively restrains host innate immune responses, promoting intracellular proliferation by interfering with host oxidative metabolism and inducing macrophage death.
- The arabinose chains of AG play a more significant role in modulating mycobacterial virulence and pathogenicity than galactose chains.
- Targeting AG biosynthesis presents a potential strategy for combating mycobacterial infections.
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