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Bhat, Y.

Publications and source records attributed to Bhat, Y..

2 recordsLinked to original sources

Diesel exhaust particles disrupt mouse and human iPSC-derived microglial function and Amyloid-beta clearance in Alzheimer's disease models

Alzheimers disease (AD) is one of the most common neurodegenerative disorders, yet the environmental drivers that accelerate its progression remain poorly defined. Traffic-related air pollution is emerging as a modifiable AD risk factor, but how inhaled particles perturb microglial clearance of amyloid beta (A{beta}) is unknown. Microglia are the principal A{beta}-clearing phagocytes of the brain. Here, we showed that exposure of primary mouse microglia and human induced pluripotent stem cell-derived microglia (iMGLs) to 3-100 {micro}g/mL diesel exhaust particles (DEP) disrupted microglial homeostasis, induced morphological abnormalities, increased reactive oxygen species, impaired lysosomal degradation, and led to a concentration-dependent loss of phagocytic capacity. Importantly, DEP markedly reduces A{beta} uptake in both species. Transcriptomic profiling revealed a DEP-induced, non-canonical state characterized by metabolic reprogramming, broad suppression of inflammatory pathways, antigen-presentation, chemokine, and species-specific remodeling during subsequent A{beta} challenge, including defective chemotaxis, cell cycle, and cytoskeletal signatures. These data show that DEP profoundly alters microglial transcriptional and metabolic states, leading to impaired A{beta} clearance, which could, thereby, further contribute to AD progression.

neuroscience↗

Sec and Tat mediated secretion safeguards Mycobacterium tuberculosis membrane homeostasis

Protein secretion drives Mycobacterium tuberculosis (Mtb) physiology and pathogenesis, yet a unified picture of the machinery and its role in cell membrane homeostasis is still lacking. By comprehensively curating published evidence, we assembled a systems-level map of Mtb secretion encompassing 92 components and 198 mechanistic reactions across Sec, Tat, and ESX pathways. The secretory components identified were integrated with high-throughput ChIP-Seq and transcriptome datasets to elucidate the regulation of the secretion system. Using CRISPRi, conditional depletion of SecA1 or TatA impaired growth in vitro and survival ex vivo. Quantitative secretome revealed decreased export of SecA1- and TatA-dependent substrates, with enrichment of cytosolic proteins in culture filtrates, indicating increased membrane permeability. Membrane proteomics showed depletion dependent increased metabolic/lipid-degrading proteins and decreased cell-wall/cell-process proteins, consistent with loss of membrane stability. Ultrastructural defects and increased ethidium bromide uptake confirmed impaired membrane integrity. Together, our multi-omics and functional genetics established SecA1 and TatA as essential guardians of Mtb membrane integrity which provided valuable datasets and a framework for secretion-dependent Mtb pathogenesis.

microbiology↗