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L. H. Chandappa

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Open access Aug 2026

Multivariate and genome-wide SNP-based characterization of genetic diversity and population structure in a subset of the 3 K rice (Oryza sativa L.) genome panel of germplasm accessions

The narrow genetic base of cultivated rice necessitates the identification of diverse germplasm accessions possessing superior agronomic performance and enhanced nutritional quality. The present study aimed to assess the phenotypic and genetic diversity among a subset of 300 rice germplasm accessions and identify elite accessions for rice biofortification and yield improvement programmes. The germplasms were evaluated during Kharif 2023 for nine quantitative traits using an alpha lattice design at Mandya and Gangavathi. Analysis of variance revealed significant differences among the accessions for all traits, indicating substantial phenotypic diversity. Principal Component Analysis identified the major contributors to phenotypic variation, with the first four principal components explaining 69% of the total variation. Based on phenotypic performance, 50 representative accessions were selected for K-means clustering and Multi-Trait Genotype–Ideotype Distance Index (MGIDI) analysis. The accessions were grouped into three distinct clusters with contrasting grain yield and grain zinc concentration. MGIDI identified IRGC 349 as the accession closest to the ideotype, combining high grain yield (6.10 t/ha) with favourable grain zinc concentration (24.59 ppm) and desirable agronomic traits. Based on mean performance across locations, IRGC 647 exhibited the highest grain zinc concentration (34.97 ppm) and was identified as a promising donor for rice biofortification programmes. Genetic diversity and population structure were assessed using 102,580 genome-wide single nucleotide polymorphism (SNP) markers. STRUCTURE analysis, SNP-based principal component analysis (PCA) and phylogenetic-based clustering consistently identified two major genetic subpopulations. The combined phenotypic and genotypic analyses revealed substantial genetic diversity and identified elite accessions for the development of high-yielding and zinc-biofortified rice cultivars.

Spoorthi Siddeswara Rekha, Deepak Chikkaballi Annegowda, Sanketh Ashok Umapathi et al. · 0 citations
Open access Jul 2026

Revisiting the foundation era of plant genomics with a commentary on the pioneering contributions of Prof. Chittaranjan Kole

Abstract The evolution of plant genomics has been shaped by several pioneering milestones, beginning with the introduction of restriction fragment length polymorphism–based genetic linkage maps in the mid‐1980s. Among the global contributors, Prof. Chittaranjan Kole stands as a distinguished figure whose work fundamentally shifted the trajectory of plant genomics and molecular breeding. This tribute highlights his scientific journey and groundbreaking contributions, from being the first Indian scientist to physically map and sequence a plant gene in barley to establishing the foundations of molecular cytogenetics, comparative genomics, and molecular evolution and phylogenetic relationships in plants. His landmark research on Brassica genomics, including high‐resolution mapping, Mendelization of quantitative trait loci (QTLs), and innovative use of recombinant inbred lines, enabled unprecedented insights into trait evolution, stress biology, and genome homology between Brassica species and Arabidopsis. Prof. Kole's work on mapping genes and QTLs associated with flowering time, biotic stress resistance, abiotic stress tolerance, and genome evolution has provided a framework now integral to marker‐assisted selection, genomic breeding, and climate‐resilient crop development. This article offers a scholarly reflection on his pioneering contributions, establishing Prof. Kole as a founding architect of plant genomics research in India and one of its most influential contributors globally.

M. Nageswara-Rao, Sarita Pandey, Poulami Bhattacharjee et al. · 0 citations

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