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Narendran, P.

Publications and source records attributed to Narendran, P..

3 recordsLinked to original sources

Evolutionary origins and chromatin state shape X-chromosome upregulation pattern during eutherian and metatherian embryogenesis

In mammals, silent state of one of the X-chromosomes in female balance the X-dosage between sexes. In parallel, X to autosome imbalance due to monoallelic expression of X-linked genes relative to biallelic autosomal genes, is primarily compensated through the X-chromosome upregulation (XCU). It has been demonstrated that X-chromosome inactivation (XCI) and XCU coincides during embryogenesis, however, XCU is not global and it occurs in a gene-specific manner. The underlying mechanistic aspects of such specificity of XCU remain unknown. Here, we provide systematic and comparative analysis across eutherians (mouse, human and pig) and metatherian (opossum) embryogenesis to determine if evolutionary origins shape the XCU. Intriguingly, we show that while evolutionary older X-linked genes (predating mammalian divergence) undergo robust XCU consistently across developmental stages, younger mammalianLJorigin genes do not. Similarly, the eutherian X-linked genes conserved in metatherian X (X-ortholog) undergo robust XCU, whereas genes orthologus to metatherian autosome (Auto-ortholog) exhibit weaker pattern of XCU. Further, strata-wise comparison revealed that genes in older XLJchromosome strata (1-2) consistently undergo upregulation, whereas strata 3-4 genes do not. Importantly, we show that different evolutionary classes of X-linked genes, which undergo robust XCU, are often enriched with active chromatin marks (H3K36me3, H3K27ac and H3K4me1) relative to the autosome, suggesting that chromatin state mediate the XCU. Moreover, we show that often active-marks enrichment correlates with differential XCU dynamics of different class of genes. Taken together, our study provides significant insight into the evolutionary dynamics of XCU and underlying mechanistic framework.

genetics↗

Tracking GAD-specific T-cell expansions in Type 1 diabetes by intradermal GAD-Alum challenge

Identifying and monitoring autoreactive T cells that drive beta cell destruction remains a major obstacle to developing effective immunotherapies for type 1 diabetes (T1D). These cells are extremely rare in peripheral blood and cannot be accessed directly from the pancreas. We used intradermal injection of GAD-Alum to recruit GAD-specific T cells to accessible sites in the skin and skin-draining lymph nodes (LNs), sampled by skin suction blisters and ultrasound-guided LN aspiration. Peripheral blood samples obtained before GAD injection were restimulated with GAD in vitro to detect reactive CD4+ T cells. Re-expression of selected T cell receptors (TCRs) confirmed antigen specificity. Up to 70% of T cells at the skin injection site were clonally-expanded and 4 of 14 (28%) re-expressed TCRs were GAD-reactive. In draining LNs 1 of 14 (4%) clonally-expanded TCRs was GAD-reactive, representing [~]0.08% of all T-cells. GAD-reactive cells across compartments displayed Th1 and Th17-associated transcription signatures. These results demonstrate the intradermal autoantigen challenge, coupled with scRNAseq, enables direct identification and molecular profiling of autoreactive T cells in vivo. This minimally invasive approach provides a powerful platform for tracking antigen-specific specific T cells to monitor disease activity and evaluate immune interventions in T1D.

immunology↗

Genome Sequencing, Molecular Marker Development and Genetic Diversity Assessment of Economically Important Vulnerable Tree Species Saraca asoca (Roxb.) W.J de Wilde

Saraca asoca, is an understory tree along streams in evergreen to semi-evergreen forests up to 600 m. It is an important tree in cultural tradition and medicinally significant. It is native to India and Sri Lanka. Globally the species is found to occur in India, Sri Lanka, Myanmar, Bangladesh. It was introduced in Malaysia. Within India, its found in Western Ghat and Eastern Ghat. It is occasionally planted in gardens. Saraca asoca is known for its extensive pharmacological properties, particularly its bark is used in treating menorrhagia, dysfunctional uterine bleeding, hemorrhagic dysentery, and other gynecological issues, it holds a prominent place in Ayurvedic medicine. This study was undertaken to sequence the whole genome of Saraca asoca using the Illumina HiSeq2500 platform, and evaluating the genetic diversity among samples from Kolluru and other locations in southern India through Genotyping by Sequencing (GBS). Analysis of 49 samples established genetic diversity relationships using a distance matrix. Sequencing yielded 1.6 Gb, covering 76% of the estimated genome size. The genome includes 764 million bases of repetitive DNA elements. A survey of Simple Sequence Repeats (SSRs) identified 584,615 SSRs, with 236,123 sequences containing SSRs. Utilizing the KEGG database, biosynthesis pathways for catechin and epicatechin within the flavonoid synthesis pathway were identified. This comprehensive genomic analysis of Saraca asoca (Sita Ashoka) provides critical insights for conservation efforts aimed at preserving this vulnerable species, Saraca asoca (Roxb.) Willd.

genomics↗