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T, N. S.

Publications and source records attributed to T, N. S..

2 recordsLinked to original sources

Genome Assembly of the Iconic Samba Mahsuri Delineates Locus-specific Population Structure within Indica Rice

High-quality reference genomes enable detailed analysis of structural variation and its consequences for genome organization in crops. Here, we present a chromosome-scale genome assembly of Oryza sativa cv. Samba Mahsuri (SM), an elite Indian mega rice variety cultivated for its grain and cooking quality. Using PacBio HiFi sequencing in combination with Illumina reads and Bionano optical mapping, we generated a [~]395 Mb assembly (SMv1.0) with 97.7% BUSCO completeness. A robust annotation framework identified 31,138 evidence-guided protein-coding gene models alongside 59,152 ab initio predictions. Comparative genomic analyses revealed extensive macrosynteny with established rice reference genomes, while uncovering pronounced locus-specific sequence and structural polymorphisms. Notably, a complex inversion-match-inversion (IMI) configuration on chromosome 6 differentiates SM from the japonica reference Nipponbare, but not from the indica reference R498. Population-scale analyses of 533 cultivated and 4 wild rice accessions demonstrate that genetic variation within the IMI region produces a markedly sharper and more coherent population structure than is observed in flanking regions or genome-wide, including tight subpopulation-based clustering and segregation of alternative IMI configurations within indica rice. Together, these results establish SMv1.0 as a robust chromosome-scale reference genome sequence for rice and demonstrate how large structural polymorphisms can shape locus-specific patterns of relatedness that diverge from genome-wide ancestry. Significance StatementWe present a high-quality chromosome-scale genome sequence of the elite Indian rice variety Samba Mahsuri (SM), which, to the best of our knowledge, represents the first chromosome-scale reference genome from Indian rice germplasm assembled using a map-based method. Using this reference to analyze population-scale genotyping data from 533 cultivated and four wild rice accessions reveals markedly tighter population clustering within a megabase-scale inversion (IMI) region, than at the whole-genome scale, along with a pronounced split within indica rice that is independent of genome-wide ancestry.

plant biology↗

Omics-driven Identification of Candidate Genes and SNP markers in a Major QTL Controlling Early Heading in Rice

Precise control of heading date is essential for optimizing regional adaptability, enhancing climate resilience, and maximizing grain yield in rice, making it a key breeding target. The SM93 rice line exhibits a 7-10-day earlier heading than the elite Indian variety, Samba Mahsuri (SM). F2 populations derived from a cross of SM with SM93 were phenotyped for heading date across three successive kharif (rainy) seasons (2019-2021), revealing consistent early heading and notable transgressive segregation. Initial QTL-seq analysis identified a high-confidence QTL on Chr3, qDTH3, strongly associated with days to heading (DTH). KASP assays and association mapping were subsequently performed to refine the QTL, narrowing it down to a 2.53 Mb region, explaining [~]25% of the trait. SNP markers closely linked to heading were identified. Transcriptomic analysis revealed significant differential regulation of genes within qDTH3 and upregulation of the MADS- box network in SM93 during panicle initiation, suggesting their role in promoting early heading. Our integrative strategy led to the identification of candidate genes within qDTH3, associated with heading date, phytohormone regulation, and protein turnover, include the transcription factors, OsMADS34/PAP2 (Os03g0753100), OsZHD11 (Os03g0718500), HSFA2A (Os03g0745000), OsH3 (Os03g0727200), OSH1/Oskn1 (Os03g0727000), a histidine kinase, HK4 (Os03g0717700), and a Serine carboxypeptidase, OsSCP19 (Os03g0730400). Our findings provide SNP markers in and around these genes, as potentially valuable tools for breeding early-maturing rice varieties with improved adaptability. HIGHLIGHTThis study on the SM93 rice line identifies a major QTL for early heading and describes genes and SNP markers that are closely linked to this trait, which can be used in trait advancement. By fine-tuning heading date, we can help rice varieties better withstand temperature extremes, drought, and other climate-related stresses, making it a key target for genetic improvement and breeding strategies.

plant biology↗