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MDA5 RNA-sensing pathway activation by Mycobacterium tuberculosis promotes innate immune subversion and pathogen survival
C. Korin Bullen, Alok K. Singh, Stefanie Krug, Shichun Lun, Preeti Thakur, Geetha Srikrishna, William R. Bishai
C. Korin Bullen, Alok K. Singh, Stefanie Krug, Shichun Lun, Preeti Thakur, Geetha Srikrishna, William R. Bishai
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Research Article Immunology Infectious disease

MDA5 RNA-sensing pathway activation by Mycobacterium tuberculosis promotes innate immune subversion and pathogen survival

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Abstract

Host cytosolic sensing of Mycobacterium tuberculosis (M. tuberculosis) RNA by the RIG-I–like receptor (RLR) family perturbs innate immune control within macrophages; however, a distinct role of MDA5, a member of the RLR family, in M. tuberculosis pathogenesis has yet to be fully elucidated. To further define the role of MDA5 in M. tuberculosis pathogenesis, we evaluated M. tuberculosis intracellular growth and innate immune responses in WT and Mda5–/– macrophages. Transfection of M. tuberculosis RNA strongly induced proinflammatory cytokine production in WT macrophages, which was abrogated in Mda5–/– macrophages. M. tuberculosis infection in macrophages induced MDA5 protein expression, accompanied by an increase in MDA5 activation as assessed by multimer formation. IFN-γ–primed Mda5–/– macrophages effectively contained intracellular M. tuberculosis proliferation to a markedly greater degree than WT macrophages. Further comparisons of WT versus Mda5–/– macrophages revealed that during M. tuberculosis infection MDA5 contributed to IL-1β production and inflammasome activation and that loss of MDA5 led to a substantial increase in autophagy. In the mouse TB model, loss of MDA5 conferred host survival benefits with a concomitant reduction in M. tuberculosis bacillary burden. These data reveal that loss of MDA5 is host protective during M. tuberculosis infection in vitro and in vivo, suggesting that M. tuberculosis exploits MDA5 to subvert immune containment.

Authors

C. Korin Bullen, Alok K. Singh, Stefanie Krug, Shichun Lun, Preeti Thakur, Geetha Srikrishna, William R. Bishai

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Figure 4

Elevated autophagic flux and targeting of intracellular M. tuberculosis in Mda5-deficient, IFN-γ–primed macrophages.

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Elevated autophagic flux and targeting of intracellular M. tuberculosis ...
(A–F) IFN-γ–primed Mda5-KO and NTC J774.1 cells were infected with M. tuberculosis expressing GFP on an episomal plasmid (MOI of 1:10) for 6 hours. (A) Fluorescence confocal images of fixed cells immunostained for LC3 (Alexa Fluor 647, far-red) or nuclei (Hoechst 33342, blue). (B and C) Quantification of LC3 puncta per nucleus (B) and M. tuberculosis colocalization with LC3B (C). (D) Fluorescence confocal images of fixed cells immunostained for p62 (Alexa Fluor 647, far-red) or nuclei (Hoechst 33342, blue). (E and F) Quantification of p62 puncta per nucleus (E) and M. tuberculosis colocalization with p62 (F). Scale bars: 20 μm for ×63 images. Perinuclear LC3 and p62 puncta were counted in a minimum of 200 cells across different fields. Image processing and analysis were performed using Fiji and Imaris 9.7 software. Data are mean ± SD (n = 3 biological replicates from 2 independent experiments). (G) LC3-I, LC3-II, and β-actin protein levels in IFN-γ–primed Mda5-KO and NTC J774.1 cells infected with M. tuberculosis (MOI of 1:5) for 24 hours detected by immunoblot analysis. Densitometric quantification of the LC3-II/β-actin ratio presented as the mean ± SD (n = 4 biological replicates from 4 independent experiments). *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001 by 2-way ANOVA with Tukey’s posttest.

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