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Arvind, A.

Publications and source records attributed to Arvind, A..

5 recordsLinked to original sources

Integrative Multi-Tissue Analysis Identifies Synaptic Gene Networks Specific to Major Depressive Disorder in Women

Major Depressive Disorder (MDD) shows marked gender differences in prevalence and molecular signatures. Transcriptomic studies of post-mortem human brain tissue have reported alterations in the expression of synapse-related genes in MDD, including gender-specific patterns. But it remains unclear whether transcriptional changes observed in the brains of women with MDD are detectable in peripheral blood and conserved in experimental stress models. Whole-blood RNA sequencing was performed in women with MDD (n = 6) and matched healthy controls (n = 4). Differentially expressed genes (DEGs) were compared with previously reported female-specific blood and post-mortem brain transcriptomic datasets where selected overlapping synapse-associated genes were evaluated in the hippocampus and prefrontal cortex of female mice exposed to Chronic Variable Mild Stress (CVMS). Peripheral blood analysis identified DEGs enriched for synaptic organization, neuronal structure, and ion transport pathways. A substantial proportion of DEGs overlapped with previously reported datasets from peripheral blood, female MDD brain transcriptomic studies, and genes showing exclusive/enriched expression in the normal human brain. Network-based prioritization identified seven synapse-associated genes (SHANK2, SHANK3, CACNG8, GPHN, PICK1, NRXN2 and DNM2) for further analysis. In the female CVMS model, several of these genes showed altered expression in the hippocampus and/or prefrontal cortex, alongside behavioural changes and reduced dendritic spine density. These findings highlight shared transcriptional signals across human blood and human brain datasets, as well as in the mouse brain. However, larger studies are required to confirm and validate these observations.

neuroscience↗

Aging compromises Zebrafish caudal fin regeneration by disrupting Regenerative gene networks and Cellular metabolism

Zebrafish are widely recognized as a powerful vertebrate model for studying epimorphic regeneration due to their remarkable ability to restore complex tissues. However, regenerative efficiency declines with age, potentially due to alterations in gene regulatory networks and cellular metabolism. In the present study, we investigated the molecular and bioenergetic basis of age-associated regenerative decline by comparing young adult (<1 year) and old adult (>3 years) zebrafish during caudal fin regeneration. To further examine the contribution of mitochondrial function, mitochondrial dysfunction was experimentally induced using rotenone (20 nM), a mitochondrial Complex I inhibitor. Regenerative progression was assessed morphologically at 12hpa, 1dpa, 2dpa, 3dpa, and 7dpa, revealing a pronounced delay in fin regrowth in aged and rotenone-treated fish compared with young controls. Behavioral analysis indicated subtle but non-significant changes across experimental groups. Gene expression analysis using quantitative real-time PCR revealed age- and mitochondria-associated dysregulation of key regenerative gene families involved in developmental patterning, extracellular matrix organization, cellular signaling, and mitochondrial metabolism. Proteomic profiling further identified differential expression of proteins associated with mitochondrial bioenergetics, extracellular matrix remodeling, and signaling pathways required for blastema formation and tissue outgrowth. Ultrastructural examination by transmission electron microscopy revealed pronounced mitochondrial abnormalities, including enlarged mitochondria with fragmented or disrupted cristae, in aged and rotenone-treated regenerating tissues. Collectively, our integrative analysis establishes a mechanistic link between aging, mitochondrial dysfunction, and compromised regenerative capacity in zebrafish. The findings provide broader insights into metabolic constraints underlying age-related decline in regenerative potential in vertebrates.

developmental biology↗

Replicating the Gold Standard: A Novel Female Chronic Social Defeat Stress Model (femCSDS) for Studying Sex Differences in Depression

Depression shows significant sex differences in prevalence and neurobiological underpinnings, yet preclinical research investigating the pathophysiology of depression and the efficacy of antidepressants has predominantly relied on male models. Here, we establish a novel female chronic social defeat stress paradigm by leveraging the natural aggression of parous CD1 females, co-housed with castrated males to induce aggression while eliminating confounding sexual behaviors and without hormonal or surgical manipulations. Selected aggressive females reliably displayed offensive behaviors toward C57BL/6NCrl intruders across repeated encounters. Defeated female mice exhibited pronounced depression-like behaviors, including social withdrawal, anhedonia, behavioral despair, and elevated anxiety-like responses. Biochemical analysis revealed elevated glutamate levels in Nucleus Accumbens (NAc) and caudate putamen (CPu). Alterations in EAAT1, GRIN2B, and Neurabin expression were observed in CPu, indicating excitotoxic stress and compromised synaptic integrity. Label free Quantitative MS-MS analysis of NAc revealed 1194 significantly dysregulated proteins. Ingenuity Pathway Analysis highlighted canonical pathway disruptions in synaptogenesis signaling pathway and glutamate signaling pathway. Disease and function analysis revealed enrichment in neuroinflammation, synaptic dysfunction, and mitochondrial dysfunction. Given the extensive literature on male CSDS and its established pathophysiology, we aimed and successfully developed female-specific replica model of traditional male CSDS, enabling direct comparison and elucidation of sex differences in depression pathophysiology.

neuroscience↗

Essential Role of Protein Kinase R in the Pathogenesis of Pulmonary Veno-occlusive Disease

Pulmonary veno-occlusive disease (PVOD) is a rare and severe subtype of pulmonary arterial hypertension, marked by progressive remodeling of small pulmonary arteries and veins with no therapies. Using a mitomycin C (MMC)-induced rat model, we previously demonstrated that protein kinase R (PKR)-mediated integrated stress response (ISR) drives endothelial dysfunction and vascular remodeling. To determine if PKR is the sole mediator of ISR and the pathogenesis, we treated control (Ctrl) and PKR knockout (KO) mice with the same dose of MMC. Consistent with rat data, Ctrl mice displayed ISR activation, vascular remodeling, and pulmonary hypertension after MMC treatment, while KO mice showed none of these phenotypes. Proteomic analysis revealed that MMC-mediated ISR activation attenuates protein synthesis in Ctrl but not in KO mice. These findings underscore the significance of PKR-dependent ISR activation and subsequent perturbation of proteostasis as central mechanisms driving PVOD pathogenesis and identifying PKR as a promising therapeutic target.

cell biology↗

Small molecule influence on Caudal fin regeneration in Zebrafish: A proteomic based study

Dietary and addictive small molecules play a significant role in altering in vivo conditions. Due to their minuscule size, these molecules can seamlessly traverse tissues and cellular membranes, influencing key biological processes such as cellular growth, differentiation, and intracellular communication, which are crucial for tissue regeneration. The zebrafish (Danio rerio) serves as an excellent model for studying regenerative growth due to its remarkable ability to regrow amputated appendages. In this study, we systematically evaluated the effect of small molecules, including ethanol (0.5%), glucose (1%), and NaCl (0.2%), on zebrafish caudal fin regeneration over a 7-day period. Regenerative growth analysis indicated delayed fin regrowth across all treated groups, with ethanol exposure showing the most significant impairment. Behavioural assessments revealed significant stress-induced locomotor alterations in treated groups, with the ethanol-exposed group exhibiting the most pronounced reduction in total distance moved and velocity. Proteomic profiling using label-free quantification (LFQ) identified 113, 257, and 178 differentially expressed proteins in ethanol, glucose, and NaCl-treated groups, respectively. Subsequent validation using the iTRAQ labeling approach confirmed 16 commonly dysregulated proteins across all conditions, highlighting a shared molecular response associated with stress and repair mechanisms. Pathway enrichment analysis mapped differentially expressed proteins to various canonical signaling pathways, including GP6 signaling, mitochondrial dysfunction, RHO GTPase cycling, antigen processing, and metabolic regulation. Ingenuity Pathway Analysis (IPA) further revealed associations with disease and function networks specific to each treatment condition. Our findings provide valuable insights into how metabolic and ionic perturbations influence zebrafish fin regeneration at the molecular level, offering a deeper understanding of tissue repair mechanisms under stressed conditions.

developmental biology↗