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Mehkri, B.

Publications and source records attributed to Mehkri, B..

2 recordsLinked to original sources

NPC1 deficiency engages a lysosome - genome - immune program linked to neurodegeneration and cellular aging signatures

Lysosomal dysfunction is a prominent feature of neurodegeneration and aging, yet how primary defects in lysosomal trafficking are converted into progressive cellular decline remains poorly understood. Niemann Pick disease type C (NPC), caused by impaired NPC1 dependent cholesterol export, provides a genetically defined model to address this question. Here, we show that NPC1 deficiency activates a lysosome, genome, immune axis linking cholesterol trafficking failure to neurodegeneration and hallmarks of cellular aging. In Npc1 mutant mice, NPC1 loss triggered DNA damage, neuroinflammation, microglial and astrocytic activation, Purkinje neuron degeneration, and motor dysfunction. Consistently, NPC patient-derived fibroblasts exhibited mitochondrial abnormalities and widespread DNA double-strand breaks. Genome-wide DNA break mapping and transcriptomic analyses revealed extensive genomic instability at regulatory regions, including enrichment of DNA breaks at transcription start sites and G quadruplex associated loci, accompanied by widespread transcriptional reprogramming, activation of innate immune pathways, disruption of fibroblast identity, and induction of cellular aging signatures. We further identify Fingolimod, an FDA approved sphingosine - 1 phosphate receptor modulator, as a potent modifier of this disease network. Fingolimod improved lysosomal cholesterol trafficking, increased LAMP1 abundance, attenuated STING associated inflammatory signaling, normalized mitochondrial function, reduced neuroinflammatory and neurodegenerative phenotypes in Npc1 mutant mice, and broadly shifted disease-associated transcriptional programs toward a healthier state. Extending these findings beyond NPC, Fingolimod improved age-associated phenotypes in C. elegans and prolonged lifespan in aged male mice. Together, these findings identify genome instability and chronic innate immune activation as major downstream consequences of lysosomal cholesterol trafficking failure and establish Fingolimod as a clinically actionable modulator of lysosomal dysfunction, neurodegeneration, and aging-related decline.

molecular biology↗

ST2 Signaling Regulates Innate Immune Responses in Kidney Injury

IntroductionInnate immune cells are critical in inflammation, repair, and fibrosis post-kidney injury. Nuclear-cytokine interleukin (IL)-33, which is released upon tissue damage, signals through IL-1-receptor-like-1 (IL1RL1 or ST2), expressed on many immune cells, including macrophages. However, macrophage regulation by IL-33/ST2 is incompletely understood. We hypothesized that ST2 plays a vital role in activating and/or mobilizing myeloid cells and macrophages to sites of injury. MethodsWe performed acute and chronic ischemia-reperfusion injury (IRI) in mice with myeloid cell-specific deletion of ST2 (ST2fl/fl.LysMCre) to examine the role of myeloid cells ST2 expression in renal injury. The structure and function of the kidney were probed using flow cytometry, histology, immunohistochemistry, quantitative gene expression, and biochemical analysis. The invitro efferocytosis assay, RNA Seq, and Seahorse assay were carried out using bone-marrow-derived macrophages ResultsInterestingly, ST2 deletion resulted in attenuated renal pathology in the acute renal IRI model, whereas in chronic IRI, the loss of ST2 exacerbated kidney injury, suggesting a role of ST2 in the resolution of chronic injury. RNA sequencing (RNASeq) analysis of bone-marrow-derived ST2 sufficient and deficient macrophages showed that loss of ST2 downregulated genes involved in oxidative phosphorylation and clearance of dead cells (efferocytosis). Indeed, the ST2-deficient macrophages had reduced phagocytosis activity. Further, Seahorse analysis revealed that ST2-deficient macrophages had compromised mitochondrial metabolism. ConclusionsWe conclude that the IL-33/ST2 axis is essential for regulating macrophage function and contributes to regulating tissue homeostasis following renal injury.

immunology↗