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Yeruva, C. V.

Publications and source records attributed to Yeruva, C. V..

2 recordsLinked to original sources

Optineurin is involved in regulating macrophage responses during mycobacterial infection

Autophagy has emerged as a critical innate immune mechanism for host elimination of intracellular pathogens, however, the role of the autophagy receptor optineurin during mycobacterial infection is not fully understood. To address this lacuna, we infected bone marrow-derived macrophages (BMDMs) derived from Optn+/+ and Optn-/- mice with Mycobacterium smegmatis, and observed the infection outcome at sequential time points. While low multiplicity of infection (MOI) did not show any significant difference between BMDMs from the two groups, at high MOI Optn-/- mice-derived macrophages showed significantly lower colony forming unit counts, as well as lower cell counts at 12 h and 24 h post-infection. Quantification of cell numbers and nuclear morphologies at various time points post-infection indicated a markedly higher cell death in the optineurin-deficient macrophages. Optineurin-deficient macrophages showed significantly lower levels of the autophagosomal protein LC3-II upon infection, indicating a potential role for optineurin in regulating autophagy during mycobacterial infection. Moreover, when stimulated by bacterial LPS, optineurin deficient macrophages, showed altered levels of the inflammatory cytokine pro-IL-1{beta}. These observations taken together suggest a novel regulatory role for optineurin during mycobacterial infection, with its deficiency leading to an impairment in macrophage responses.

cell biology↗

Dissecting the Ca2+ dependence of Mycobacterium tuberculosis DesA1 function

Mycobacterium tuberculosis (M. tb) has a complex cell wall, largely composed of mycolic acids and long-chain fatty acids that play a crucial role in maintaining its integrity and permeability. This complex lipid structure has a role in abrogating the process of phagosome-lysosome fusion and infection establishment. The M. tb desaturase A1 (DesA1) catalyzes the introduction of position-specific double bonds, a key step in the biosynthesis of a diverse range of mycolic acids. We have previously demonstrated that M. tb DesA1 is a Ca2+-binding protein, belonging to the extended {beta}{gamma}-crystallin superfamily. Using a combination of biophysical and genetic approaches, we investigated the structural and functional significance of Ca2+ binding on DesA1 activity. A protein unfolding assay of the protein in the presence and absence of Ca2+ shows that Ca2+ binding imparts structural stability to DesA1. To identify the role of Ca2+, we introduced mutations at key residues in the identified Ca2+-binding motif of DesA1 and generated F303A, E304Q, and F303A-E304Q variants of DesA1. We identified F303 as a hot point which disables the protein for Ca2+ binding. Two other mutations E304Q and F303A-E304Q showed reduced Ca2+ binding. Complementation of a conditionally complemented desA1 deletion mutant strain of Mycobacterium smegmatis with these mutants, either failed to complement its growth phenotype or led to a compromise in complementation. In addition, the F303A and F303A-E304Q complements exhibit increased sensitivity to isoniazid, a first-line anti-tubercular drug, pointing to a cell wall permeability defect in these strains. Our findings highlight the critical importance of Ca2+ in the functioning of DesA1 and its implicit role in the maintenance of mycobacterial cellular integrity.

microbiology↗