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Duraikannu, D.

Publications and source records attributed to Duraikannu, D..

2 recordsLinked to original sources

PRSS56 acts as an intrinsic retinal signal driving postnatal ocular axial growth and myopia susceptibility

Myopia is a leading cause of visual impairment worldwide, and high myopia markedly increases the risk of irreversible vision loss. Although visual experience guides postnatal ocular elongation, the role of intrinsic retinal growth signals remains poorly defined. Here we identify the serine protease PRSS56 as a retinal factor that promotes ocular axial growth beyond early development. Using genetic mouse models, we show that conditional inactivation of Prss56 in Muller glia reduces axial length and causes hyperopia even under dark-rearing conditions, demonstrating that PRSS56 drives axial elongation independently of light-evoked visual input during emmetropization. Conversely, Muller glia-specific overexpression of Prss56 induces axial elongation in a proteolysis-dependent manner, supporting its role as an autonomous retinal growth signal. In concordance, human genetic analyses reveal that the common PRSS56 variant rs2853447 is associated with increased axial length in individuals with myopia and high myopia, but not in non-myopes, suggesting that this variant confers a selective growth advantage in individuals predisposed to ocular elongation. Functional genomic analyses further identify a myopia-associated variant, rs2741297, within a retinal enhancer in intron 4 of PRSS56 marked by open chromatin and transcription factor occupancy. Together, these findings establish PRSS56 as an intrinsic retinal growth factor that functions beyond early eye development and support a model in which genetic and environmental factors converge on retinal pathways to modulate myopia susceptibility.

genetics↗

Antagonistic activity of AEA on TAT treated Human Astrocytes identify Inflammaging pathways

Physiologically, the endocannabinoids are known to reduce inflammation by decreasing production of inflammatory factors in immune and glial cells. Astrocytes secrete soluble inflammatory mediators and prolonged activation of astrocytes is associated with accelerated aging in Central Nervous System. Many reports show miRNAs as critical gene regulators in inflammation and astrogliosis in astrocytes. The aim of this study is to investigate the microRNA changes affected by Anandamide on HIV1 TAT (Trans-activator of transcription protein) stimulated normal human astrocytes. We performed global microRNA profile in TAT activated astrocytes and analysed changes on exposure to AEA. To delineate the mechanism of action we assessed with bioinformatic tools miRWalk, KEGG and Cytoscape the global microarray for significantly impacted miRNAs, and their gene targets. TAT activation in astrocytes upregulated 122 miRNAs significantly (p < 0.05). Addition of AEA in activated astrocytes downregulate the expression of 57 miRNAs significantly. Out of 122 upregulated miRNAs on TAT treatment, 37 miRNAs which were common in TAT and TAT+AEA cells showed reversal suggesting clues to critical miRNAs for the AEA-induced mitigation of neuroinflammation. Reversal in expression of selected group of miRNAs identify antagonistic pathways which are promoting anti-inflammatory environment. Pathway analysis of key 37 miRNAs show gene targets that regulate inflammation and senescence.

immunology↗