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Biology subjects

KUMAR, A.

Publications and source records attributed to KUMAR, A..

3 recordsLinked to original sources

Development and Use of miRNA-derived SSR Markers to Study Genetic Diversity, Population Structure and Characterization of Genotypes for Heat Tolerance Breeding in Bread Wheat (Triticum aestivum L.)

Wheat is one of the most important cereal crop in the world. Heat stress is an important abiotic stress limiting wheat production and productivity in the world including south-east Asia. The importance of miRNAs in gene expression under various biotic and abiotic stresses is well documented. Molecular markers, especially SSR markers, plays an important role for the success in molecular plant breeding programs. The discovery of SSRs from non-coding regions has been a challenging task. Therefore, development of novel miRNA-based SSRs from the conserved portions of the genome will prove useful for the study of genetic diversity of heat-responsive miRNA-genes in wheat. In the present study, efforts are made to mine SSR markers from 96 members of heat-responsive miRNA-genes of wheat followed by their validation using 37 contrasting (heat tolerance/susceptible) wheat genotypes. Among a set of 13 miRNA-SSRs used,7 SSRs were found polymorphic. Among these polymorphic SSR markers, three found to be very informative SSRs (HT-169j, HT-160a and HT-160b) and could largely discriminate heat tolerant genotypes from the heat susceptible ones. Further analysis based on Polymorphism Information Content (PIC) revealed that miRNA genes were more diverse in susceptible genotypes compared to tolerant genotypes. Ours is the first report that the genic/miRNA markers could be successfully used to study wheat diversity, population structure and characterization of trait specific germplasm. The important and useful miRNA-based SSRs, therefore, would serve as best markers in the marker-assisted breeding programs aimed at enhancing heat tolerance of Indian wheat.

genomics

Cloning and characterization of Osmotin (OsmSt) alleles from potato cultivar Kufri Chipsona 1

The present study was focussed to clone and sequence characterise alleles of osmotin from cDNA of Solanum tuberosum L. cultivar Kufri Chipsona 1. The genes vary in sizes as well as were found to have eleven point mutations throughout the coding sequence. One deletion of 7 bp was also found in smaller form of the gene having molecular weight of 19.91 KDa. Osmotin gene is known to impart resistance/tolerance to various fungal diseases in addition to its role as an osmoprotectant, thus, cloned osmotin alleles from important processing grade potato cultivar could become potential candidates for molecular breeding of potato.

plant biology

The Effect of Gelling agent, medium pH and silver nitrate on adventitious shoot regeneration in Solanum tuberosum

Vegetative propagation of potato makes the crop vulnerable to many seed borne diseases. The importance of the crop in attainment of food security makes it an important candidate for in vitro propagation and genetic manipulations. To undertake crop improvement programmes, development of an efficient regeneration protocol is a pre-requisite. Therefore, the present report was focussed to study various factors affecting shoot organogenesis in potato cultivar Kufri Chipsona 1. The incorporation of silver nitrate (10 {micro}M) to the regeneration medium (MS medium supplemented with BA and GA3) was found to induce shoot organogenesis in 32.11% of leaf and 59.99% of internodal explants. An increase in mean number of shoots regenerated per leaf (5.31) and internodal (8.67) explant was also observed upon addition of silver nitrate to the medium. Similarly, solidification of medium with clarigel and its adjustment to pH 5.8 was found optimum for increasing shoot organogenesis frequency in potato. Among the two types of explants tested, a better response was observed from internodes in comparison with leaf explants. The regenerated shoots were tested for clonal fidelity using PCR based molecular markers [Random Amplified Polymorphic DNA (RAPD) and Inter-Simple Sequence Repeats (ISSR)] and were found true to type.

plant biology