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Jha, D. K.

Publications and source records attributed to Jha, D. K..

2 recordsLinked to original sources

Heterochromatin fidelity is a therapeutic vulnerability in lymphoma and other human cancers

Genes involved in the regulation of chromatin structure are frequently disrupted in cancer, contributing to an aberrant transcriptome and phenotypic plasticity. Yet, therapeutics targeting mutant forms of chromatin-modifying enzymes have yielded only modest clinical utility, underscoring the difficulty of targeting the epigenomic underpinnings of aberrant gene regulatory networks. Here, we sought to identify novel epigenetic vulnerabilities in diffuse large B-cell lymphoma (DLBCL). Through phenotypic screens and biochemical analysis, we demonstrated that inhibition of the H3K9 demethylases KDM4A and KDM4C elicits potent, subtype-agnostic cytotoxicity by antagonizing transcriptional networks associated with B-cell identity and epigenetically rewiring heterochromatin. KDM4 demethylases associated with the KRAB zinc finger ZNF587, and their enzymatic inhibition led to DNA replication stress and DNA damage-induced cGAS-STING activation. Broad surveys of transcriptional data from patients also revealed KDM4 family dysregulation in several other cancer types. To explore this potential therapeutic avenue, we performed high-throughput small molecule screens with H3K9me3 nucleosome substrates and identified novel KDM4 demethylase inhibitors. AI-guided protein-ligand binding predictions suggested diverse modes of action for various small molecule hits. Our findings underscore the relevance of targeting fundamental transcriptional and epigenetic mechanisms for anti-cancer therapy. HIGHLIGHTSO_LIPhenotypic screens identified JIB-04 as a potent anti-cancer agent for multiple subtypes of diffuse large B-cell lymphoma C_LIO_LIJIB-04 binds and inhibits KDM4 demethylases resulting in epigenomic rewiring of heterochromatin C_LIO_LIKDM4 demethylases cooperate with KRAB zinc fingers to limit DNA replication stress, and KDM4 inhibition instigates DNA-damage and cGAS-STING activation in several human cancers C_LIO_LIHigh-throughput small molecule screens with semi-synthetic nucleosome substrates and AI-guided molecular docking simulations identify novel KDM4 inhibitors C_LI

genomics↗

Genome-wide Identification of the Laccase Gene Family in White Jute (Corchorus capsularis): Potential Targets for Lignin Engineering in Bast Fiber

Jute (Corchorus spp.) is an important industrial bast fibre crop valued for its lignocellulosic fibres, yet the molecular basis of fibre lignification remains unexplored. Laccase (EC 1.10.3.2) is a key enzyme catalysing the final steps of lignin polymerisation. A genome-wide analysis of white jute (Corchorus capsularis) identified 32 putative laccase genes (CcaLACs) that were phylogenetically grouped into six clades. Expression profiling revealed predominant expression in phloem tissue (16 genes), followed by leaf (8) and xylem/root tissues (4). Several CcaLACs showed progressive upregulation from early growth to harvest stages. Homology with Arabidopsis laccases highlighted candidate genes involved in lignification, which were further supported by transcriptomic and qRT-PCR analyses. Notably, key CcaLACs showed significantly reduced expression in dlpf (deficient lignified phloem fibre), a low-lignin white jute mutant. CcaLAC expression was also responsive to abiotic stresses, including abscisic acid and copper. MicroRNA target prediction identified Ath-miR397a and Ath-miR397b as potential regulators of multiple CcaLACs. Structural and subcellular analyses revealed conserved motifs, transmembrane domains, and diverse cellular localisation. Gene ontology analysis linked CcaLACs to lignin and phenylpropanoid biosynthesis. Among them, CcaLAC28 and CcaLAC32 emerged as strong candidate genes associated with phloem fibre lignification, representing promising targets for future functional validation towards developing low-lignin jute varieties.

plant biology↗