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Biology subjects

Ojha, A. K.

Publications and source records attributed to Ojha, A. K..

4 recordsLinked to original sources

Fatty acid metabolism in neutrophils promotes lung damage and bacterial replication during tuberculosis.

Mycobacterium tuberculosis (Mtb) infection triggers a significant influx of neutrophils to the lungs, which is linked to tuberculosis (TB) severity. The mechanism by which Mtb infection induces neutrophillic inflammation remains unclear. Using a clinically relevant and hypervirulent Mtb strain from the W-Beijing family, HN878, we found that genes related to both glycolysis and fatty acid metabolism are upregulated in the lung neutrophils of susceptible mice. Similar effects in gene expression were observed in rabbits, and humans with pulmonary TB compared to healthy controls. Inhibiting glycolysis with 2-deoxy D-glucose (2-DG) exacerbated disease pathology, while fatty acid oxidation (FAO) inhibitor Etomoxir (ETO) improved outcomes by reducing weight loss, immunopathology, and bacterial replication within neutrophils in genetically susceptible mice. Notably, ETO reduced neutrophil production in the bone marrow and their recruitment to the lungs. ETO specifically restrained the recruitment of Ly6Glow/dim immature neutrophil population, which is elevated during disease progression and harbors the bulk of bacilli. In a transwell setup, we demonstrated that ETO dose-dependently inhibited neutrophil chemotaxis towards infected macrophages. In summary, our research highlights the crucial role of fatty acid metabolism in regulating neutrophilic inflammation during TB and provides a rationale for targeting immunometabolism of neutrophils for potential TB treatment.

immunology↗

Starvation sensing by mycobacterial RelA/SpoT homologue through constitutive surveillance of translation

The stringent response, which leads to persistence of nutrient-starved mycobacteria, is induced by activation of the RelA/SpoT homologue (Rsh) upon entry of a deacylated-tRNA in a translating ribosome. However, the mechanism by which Rsh identifies such ribosomes in vivo remains unclear. Here, we show that conditions inducing ribosome hibernation result in loss of intracellular Rsh in a Clp protease-dependent manner. This loss is also observed in non-starved cells using mutations in Rsh that block its interaction with the ribosome, indicating that Rsh association with the ribosome is important for Rsh stability. The cryo-EM structure of the Rsh-bound 70S ribosome in a translation initiation complex reveals unknown interactions between the ACT domain of Rsh and components of the ribosomal L7/L12-stalk base, suggesting that the aminoacylation status of A-site tRNA is surveyed during the first cycle of elongation. Altogether, we propose a surveillance model of Rsh activation that originates from its constitutive interaction with the ribosomes entering the translation cycle. SignificanceBacteria persist under nutrient starvation by activating RelA/SpoT homologue (Rsh), which synthesizes a growth regulating alarmone, ppGpp. Rsh is activated specifically upon recognizing a translation elongation complex with deacylated tRNA at the A-site. It is however unclear how Rsh identifies such a complex in vivo. We show here that conditions inducing ribosome hibernation in mycobacteria cause loss of intracellular Rsh, implying that association with translating ribosomes is necessary for intracellular stability of Rsh. Using structural analysis of Rsh-bound 70S translation initiation complex, we propose here that mycobacterial Rsh identifies a Rsh-activating ribosomal complex by constitutively surveying the ribosome entering the translation cycle at the early elongation stage.

molecular biology↗

Neutrophils reprograms the bone marrow to impair T-cell immunity during tuberculosis

Mycobacterium tuberculosis (Mtb) infection induces persistent influx of neutrophils that associates with poor bacterial control and clinical outcome from tuberculosis (TB). Although implicated in TB pathology, the mechanism by which these cells contribute to pathogenesis is poorly understood. Using Cell-DIVE multiplexed immunofluorescence imaging and spatial analysis of inflammatory TB lesions, we demonstrated that persistent neutrophil infiltration affects the spatiotemporal organization of T-lymphocytes and impairs their function. Instead of directly suppressing T-cells, neutrophils produce granulocyte colony stimulating factor (CSF3/G-CSF) that collaborates with type I interferon (IFN-I) to promote a granulocyte-skewed hematopoiesis impacting T-lymphocyte production. Importantly, neutrophil-intrinsic IFN-I receptor 1 (IFNAR1) is both necessary and sufficient to promote pathologic granulopoiesis. Finally, inhibition of IFNAR1-signaling alone mitigates immunopathogenesis by restoring hematopoietic equilibrium. Collectively, our work uncovers a potential immunevasion strategy by which virulent Mtb strains induce IFN-I to generate pathogen-permissive neutrophils that produce G-CSF and sustain pathogenic hematopoiesis to impair T-cell immunity during TB.

immunology↗

Adaptation of Mycobacterium tuberculosis to biofilm growth is genetically linked to drug tolerance

Mycobacterium tuberculosis (Mtb) spontaneously grows at the air-medium interface forming pellicle biofilms, which harbor more drug tolerant persisters than planktonic cultures. The underlying basis for increased persisters in Mtb biofilms is unknown. Using a Tn-seq approach, we show here that multiple genes that are necessary for fitness of Mtb cells within biofilms, but not in planktonic cultures, are also important for their tolerance to a diverse set of stressors and antibiotics. Thus, development of Mtb biofilms appears to be associated with population enrichment, in which endogenous stresses presumably generated by challenging growth conditions within biofilm architecture select for cells that maintain tolerance to exogenous stresses including antibiotic exposure. We further observed that the intrinsic drug tolerance of constituent cells of biofilms determines the frequency of persisters: morphologically indistinguishable monoculture biofilms of a {Delta}pstC2A1 mutant hypersensitive to rifampicin harbor [~]20-fold fewer persisters than wild-type. These findings together allow us to propose that the selection of elite cells during biofilm development significantly contributes to the persister frequency. Furthermore, probing the possibility that the population enrichment is an outcome of unique environment within biofilms, we demonstrate biofilm-specific induction in the synthesis of isonitrile lipopeptides (INLP). Mutation analysis indicates that INLP is necessary for the architecture development of Mtb biofilms. In summary, the study offers an insight into persistence of Mtb biofilms under antibiotic exposure, while identifying INLP as a biomarker for further investigation of this phenomenon.\n\nSIGNIFICANCEThe tuberculosis (TB) pathogen Mycobacterium tuberculosis (Mtb) is one of the deadliest bacterial pathogens known to mankind, and TB treatment is inefficient. A lengthy chemotherapy for TB is attributed to a small subpopulation of Mtb bacilli exhibiting phenotypic tolerance to antibiotics. Drugs targeting these persisters are expected to shorten TB chemotherapy, but their development is dependent on in vitro growth models that reproducibly generate high frequency of persisters. Biofilms of Mtb are a suitable model for understanding the origin of persisters. Here, we provide an explanation for the elevated persister frequency in Mtb biofilms. We also identify isonitrile lipopetides as a biomarker of Mtb biofilms. These findings will facilitate further advancements of our efforts to identify and target Mtb persisters.

microbiology↗