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Rayadurgam, M.

Publications and source records attributed to Rayadurgam, M..

3 recordsLinked to original sources

LPC 18:2-Driven Apoptosis In Neutrophils Is Non-Inflammatory and Lipid Raft Dependent

Lysophosphatidylcholines (LPCs) are potent bioactive lipids whose fatty acid compositions dictate their immunomodulatory effects. Here, we delineate how unsaturated LPC 18:2 and saturated LPC 16:0 differentially regulate neutrophil survival and inflammatory programs. LPC 18:2 markedly increased reactive oxygen species (ROS) generation and caspase-3/7 activation, mitochondrial membrane depolarization, and cytochrome c release, features consistent with intrinsic apoptosis. In contrast, LPC 16:0 induced robust LDH and HMGB-1 release, indicating membrane rupture and pyroptosis-like death. Bulk RNA sequencing revealed that LPC 16:0 strongly upregulated inflammatory and cytokine gene expression. Disruption of lipid-raft integrity abolished LPC 18:2-induced ROS and apoptosis, underscoring the dependence of these effects on membrane organization. Collectively, these results identify LPC 18:2 as a non-inflammatory, mitochondria-dependent inducer of neutrophil apoptosis, whereas LPC 16:0 promotes inflammatory, lytic death programs. These findings highlight how lipid saturation determines neutrophil fate and immune tone, providing mechanistic insight into how distinct LPC species shape inflammation and tissue injury.

immunology↗

Deoxyguanosine Kinase Deficiency Couples Purine Metabolism to Innate Immune Activation and Lipid Accumulation in Hepatocytes

Mitochondrial DNA depletion syndromes (MDS) encompass a heterogeneous set of metabolic disorders caused by defects in enzymes responsible for maintaining mitochondrial nucleotide pools and genome integrity. Among these, deoxyguanosine kinase (DGUOK) acts within the mitochondrial purine-salvage pathway and loss-of-function mutations give rise to DGUOK deficiency, a severe hepatocerebral form of MDS marked by liver failure, neurodevelopmental impairment, and systemic metabolic inflammation. Although the clinical manifestations of DGUOK deficiency have been primarily ascribed to defective mitochondrial DNA (mtDNA) replication, some patients exhibit hepatic steatosis and inflammation despite preserved mtDNA content, suggesting that DGUOK deficiency may deregulate additional metabolic and immune pathways. Here we show that DGUOK depletion reprograms hepatocellular metabolism and innate immune signaling through a purine-dependent mechanism operating independently of mtDNA depletion. In human hepatocellular carcinoma hepatocytes (HEPG2) subjected to siRNA-mediated DGUOK silencing, mitochondrial architecture and respiration remained intact but cells exhibited pronounced lipid droplet accumulation and a robust cell-intrinsic innate immune type I interferon response. Bulk RNA sequencing revealed widespread transcriptional reprogramming, including upregulation of human endogenous retroviruses (HERVs) and interferon-stimulated genes (ISGs), suppression of lipid metabolic pathways, and changes in purine, methionine, and methylation-associated gene networks. Perturbing purine homeostasis through deoxyadenosine (dAdo) supplementation in wild-type cells phenocopied DGUOK disruption, causing global DNA hypomethylation and activation of viral mimicry pathways. Together, these findings identify DGUOK as a central regulator of the purine-regulated lipid-immune axis in hepatocytes, demonstrating that mitochondrial nucleotide salvage preserves hepatic immune and metabolic homeostasis beyond its canonical role in mtDNA synthesis. By linking purine imbalances to steatosis and type I interferon activation, this study establishes a mechanistic framework for immunometabolic pathology in DGUOK deficiency.

immunology↗

Unmasking Early Microglial Remodeling in an Alzheimer's Disease Mouse Model

Early neuroimmune remodeling is a critical yet understudied component of Alzheimers disease (AD) pathogenesis. To investigate microglial contributions to AD development prior to overt plaque deposition, we developed an open-source morphometric pipeline to systematically quantify hippocampal microglial structure and activation states in pre-plaque 5xFAD mice. Across [~]11,000 cells, we extracted multidimensional parameters including area, circularity, convex hull, branch points, nearest-neighbor distance, and nuclear features, alongside Iba1 and CD68 intensity measurements. While no significant overt gliosis was observed at this early stage, microglia from 5xFAD mice exhibited subtle trends toward increased structural complexity compared to wild-type controls. Importantly, significant sex-specific differences were detected within the CA1 subregion: male 5xFAD microglia displayed hyper-ramified morphologies consistent with enhanced surveillance states, whereas female microglia demonstrated greater density and a more reactive phenotype. Correlation analyses revealed a conserved association between microglial complexity and Iba1/CD68 expression, independent of sex or genotype, underscoring a fundamental link between cytoskeletal remodeling and phagolysosomal activity. These findings highlight the capacity of morphometric profiling to sensitively detect early, region-specific, and sex-dependent shifts in microglial phenotype before amyloid deposition. By integrating quantitative morphology with canonical molecular markers, this framework provides a robust and unbiased approach for characterizing microglial activation trajectories. Such early readouts may inform biomarker discovery and therapeutic strategies aimed at modulating microglial responses to delay or prevent AD progression.

neuroscience↗