Browsing by Author "Pental, Deepak"
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Item A chromosome-scale assembly of allotetraploid Brassica juncea (AABB) elucidates comparative architecture of the A and B genomes(John Wiley & Sons, 2021) Paritosh, Kumar; Yadava, Satish Kumar; Singh, Priyansha; Bhayana, Latika; Mukhopadhyay, Arundhati; Gupta, Vibha; Bisht, Naveen C.; Zhang, Jianwei; Kudrna, David A; Copetti, Dario; Wing, Rod A; Reddy, Vijay Bhaskar; Pradhan, Akshay Kumar; Pental, DeepakBrassica juncea (AABB), commonly referred to as mustard, is a natural allopolyploid of two diploid species – B. rapa (AA) and B. nigra (BB). We report a highly contiguous genome assembly of an oleiferous type of B. juncea variety Varuna, an archetypical Indian gene pool line of mustard, with ~100x PacBio single‐molecule real‐time (SMRT) long‐reads providing contigs with an N50 value of >5Mb. Contigs were corrected for the misassemblies and scaffolded with BioNano optical mapping. We also assembled a draft genome of B. nigra (BB) variety Sangam using Illumina short‐read sequencing and Oxford Nanopore long‐reads and used it to validate the assembly of the B genome of B. juncea. Two different linkage maps of B. juncea, containing a large number of genotyping‐by‐sequencing markers were developed and used to anchor scaffolds/contigs to the 18 linkage groups of the species. The resulting chromosome‐scale assembly of B. juncea Varuna is a significant improvement over the previous draft assembly of B. juncea Tumida, a vegetable type of mustard. The assembled genome was characterized for transposons, centromeric repeats, gene content, and gene block associations. In comparison to the A genome, the B genome contains a significantly higher content of LTR/Gypsy retrotransposons, distinct centromeric repeats, and a large number of B. nigra specific gene clusters that break the gene collinearity between the A and the B genomes. The B. juncea Varuna assembly will be of major value to the breeding work on oleiferous types of mustard that are grown extensively in south Asia and elsewhere.Item Comparative mapping of Brassica juncea and Arabidopsis thaliana using intron polymorphism (IP) markers: homeologous relationships, diversification and evolution of the A, B and C Brassica genomes(BioMed Central, 2008) Panjabi, Priya; Jagannath, Arun; Bisht, Naveen C.; Padmaja, K Lakshmi; Sharma, Sarita; Gupta, Vibha; Pradhan, Akshay K; Pental, DeepakBackground: Extensive mapping efforts are currently underway for the establishment of comparative genomics between the model plant, Arabidopsis thaliana and various Brassica species. Most of these studies have deployed RFLP markers, the use of which is a laborious and time-consuming process. We therefore tested the efficacy of PCR-based Intron Polymorphism (IP) markers to analyze genome-wide synteny between the oilseed crop, Brassica juncea (AABB genome) and A. thaliana and analyzed the arrangement of 24 (previously described) genomic block segments in the A, B and C Brassica genomes to study the evolutionary events contributing to karyotype variations in the three diploid Brassica genomes. Results: IP markers were highly efficient and generated easily discernable polymorphisms on agarose gels. Comparative analysis of the segmental organization of the A and B genomes of B. juncea (present study) with the A and B genomes of B. napus and B. nigra respectively (described earlier), revealed a high degree of colinearity suggesting minimal macro-level changes after polyploidization. The ancestral block arrangements that remained unaltered during evolution and the karyotype rearrangements that originated in the Oleracea lineage after its divergence from Rapa lineage were identified. Genomic rearrangements leading to the gain or loss of one chromosome each between the A-B and A-C lineages were deciphered. Complete homoeology in terms of block organization was found between three linkage groups (LG) each for the A-B and A-C genomes. Based on the homoeology shared between the A, B and C genomes, a new nomenclature for the B genome LGs was assigned to establish uniformity in the international Brassica LG nomenclature code. Conclusion: IP markers were highly effective in generating comparative relationships between Arabidopsis and various Brassica species. Comparative genomics between the three Brassica lineages established the major rearrangements, translocations and fusions pivotal to karyotype diversification between the A, B and C genomes of Brassica species. The inter-relationships established between the Brassica lineages vis-à-vis Arabidopsis would facilitate the identification and isolation of candidate genes contributing to traits of agronomic value in crop Brassicas and the development of unified tools for Brassica genomics.Item Effective restoration of male-sterile (barnase) lines requires overlapping and higher levels of barstar expression: A multi-generation field analysis in Brassica juncea(Springer, 2015) Bisht, Naveen C.; Jagannath, Arun; Augustine, Rehna; Burma, Pradeep K.; Gupta, Vibha; Pradhan, Akshay K.; Pental, DeepakWe have earlier reported the deployment of an effective pollination control system for hybrid seed production in Brassica juncea based on use of the barnase-barstar system. The current study analyses the stability and performance of four male-sterile (barnase) and 34 fertility restorer (barstar) lines under containment field conditions. Line (barnase) x tester (barstar) crosses were studied for effective fertility restoration over three successive growing seasons by screening the F1 and representative F2 progeny for three major parameters, namely segregation of Basta resistance and sensitive plants, distribution of male-sterile and fertile plants (vis-à-vis segregation of the barnase and the barstar genes) and pollen viability of the restored events. A total of 29 male sterile/restorer combinations out of 53 obtained in the first growing season were stable for their restoration ability when tested for two subsequent growing seasons. Stable restorers with high pollen viability were obtained at a significantly higher frequency for one of the barnase lines, bn 3.6, out of the four lines tested. Among the barstar lines, constructs carrying two transcription units of the barstar gene provided more effective fertility restoration. Quantitative real-time PCR analysis of restored progeny obtained for all the four barnase lines showed that three barnase lines (bn 3.23, bn 3.4 and bn 3.48) had an early and much higher level of barnase expression than the line bn 3.6 indicating that the level of barnase expression in the line bn 3.6 is optimal for better and stable restoration. It was observed that a high barstar : barnase transcript ratio and an extended window of barstar gene expression are critical parameters for the development of stable male-sterile (barnase) and fertility-restorer (barstar) combinations.Item Targeted editing of multiple homologues of GTR1 and GTR2 genes provides the ideal low-seed, high-leaf glucosinolate oilseed mustard with uncompromised defence and yield(John Wiley & Sons, 2023) Mann, Avni; Kumari, Juhi; Kumar, Roshan; Kumar, Pawan; Pradhan, Akshay K.; Pental, Deepak; Bisht, Naveen C.Glucosinolate content in the two major oilseed Brassica crops-rapeseed and mustard has been reduced to the globally accepted Canola quality level (<30 μmoles/g of seed dry weight, DW), making the protein-rich seed meal useful as animal feed. However, the overall lower glucosinolate content in seeds as well as in the other parts of such plants renders them vulnerable to biotic challenges. We report CRISPR/Cas9-based editing of glucosinolate transporter (GTR) family genes in mustard (Brassica juncea) to develop ideal lines with the desired low seed glucosinolate content (SGC) while maintaining high glucosinolate levels in the other plant parts for uncompromised plant defence. Use of three gRNAs provided highly efficient and precise editing of four BjuGTR1 and six BjuGTR2 homologues leading to a reduction of SGC from 146.09 μmoles/g DW to as low as 6.21 μmoles/g DW. Detailed analysis of the GTR-edited lines showed higher accumulation and distributional changes of glucosinolates in the foliar parts. However, the changes did not affect the plant defence and yield parameters. When tested against the pathogen Sclerotinia sclerotiorum and generalist pest Spodoptera litura, the GTR-edited lines displayed a defence response at par or better than that of the wild-type line. The GTR-edited lines were equivalent to the wild-type line for various seed yield and seed quality traits. Our results demonstrate that simultaneous editing of multiple GTR1 and GTR2 homologues in mustard can provide the desired low-seed, high-leaf glucosinolate lines with an uncompromised defence and yield.
