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Stranahan, L. W.

Publications and source records attributed to Stranahan, L. W..

3 recordsLinked to original sources

Mycobacterium tuberculosis manipulates host inflammation and lipid metabolism through the SET1-interacting protein Rv1075c

A growing body of literature supports a critical role for nucleomodulins, proteins that traffic to host cell nuclei and manipulate nuclear processes, in intracellular bacterial pathogenesis. Here, we identify the Mycobacterium tuberculosis (Mtb) secreted protein Rv1075c as a nucleomodulin that targets a histone modifying protein complex in macrophages. We report that {Delta}Rv1075c Mtb infection elicits a blunted transcriptional response in inflammatory and lipid metabolism pathways and fails to induce foamy macrophage formation in the lungs of infected mice. Using an unbiased mass-spectrometry based approach, we found that Rv1075c interacts with components of the H3K4me3-depositing SET1 histone methyltransferase complex, and that this interaction is required for Rv1075c nuclear localization. Consistent with Rv1075c inhibiting SET1 activity, SET1 deficiency results in hyperinduction of inflammatory genes in activated macrophages. Together, these findings reveal a mechanism by which Mtb engages host chromatin machinery and support a model whereby Rv1075c exploits the SET1 complex to promote a host environment conducive to mycobacterial persistence.

microbiology↗

Mitochondrial STAT3-mediated suppression of apoptosis constrains antimycobacterial immunity

Maintenance of mitochondrial homeostasis is required to balance the host-pathogen interface during Mycobacterium tuberculosis (Mtb) infection. Here, we identify the non-canonical TRIM family member Trim14 as a critical regulator of mitochondrial integrity in Mtb-infected macrophages. Specifically, we demonstrate that Trim14 preserves mitochondrial membrane polarization and limits macrophage apoptosis by controlling phosphorylation and mitochondrial targeting of Stat3. When targeted to mitochondria, Stat3 restricts opening of the mitochondrial permeability transition pore, which raises the macrophage threshold for apoptotic commitment. In vivo, loss of Trim14 enhances apoptosis of macrophages and dendritic cells, leading to augmented antimycobacterial immunity marked by increased CD8+ T cell activation and effector function. Together, these findings define a Trim14-mitochondrial Stat3 axis that suppresses host-protective apoptosis during Mtb infection and pinpoint mitochondrial Stat3 as a potential target for therapies aimed at boosting antimycobacterial immunity. HIGHLIGHTSO_LITrim14 raises the apoptotic threshold in Mtb-infected macrophages. C_LIO_LITrim14 controls phosphorylation and mitochondrial targeting of Stat3. C_LIO_LIReduced mitochondrial Stat3 promotes mPTP opening and apoptotic commitment. C_LIO_LITrim14 deficiency enhances apoptosis, CD8+ T cell immunity, and Mtb resistance. C_LI

immunology↗

Necrosis drives susceptibility to Mycobacterium tuberculosis in POLG mtDNA mutator mice

The genetic and molecular determinants that underlie the heterogeneity of Mycobacterium tuberculosis (Mtb) infection outcomes in humans are poorly understood. Multiple lines of evidence demonstrate that mitochondrial dysfunction can exacerbate mycobacterial disease severity and mutations in some mitochondrial genes confer susceptibility to mycobacterial infection in humans. Here, we report that mutations in mitochondria DNA (mtDNA) polymerase gamma (POLG) potentiate susceptibility to Mtb infection in mice. PolgD257A mutator mtDNA mice fail to mount a protective innate immune response at an early infection timepoint, evidenced by high bacterial burdens, reduced M1 macrophages, and excessive neutrophil infiltration in the lungs. Immunohistochemistry reveals signs of enhanced necrosis in the lungs of Mtb-infected PolgD257A mice and PolgD257A mutator macrophages are hyper-susceptible to extrinsic triggers of necroptosis ex vivo. By assigning a role for mtDNA mutations in driving necrosis during Mtb infection, this work further highlights the requirement for mitochondrial homeostasis in mounting balanced immune responses to Mtb.

immunology↗