Publications of NIPGR Scientists
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Item Insights into structural and functional diversity of Dof (DNA binding with one finger) transcription factor(Springer, 2015) Gupta, S.; Malviya, N.; Kushwaha, H.; Nasim, J.; Bisht, Naveen C.; Singh, V. K.; Yadav, D.MAIN CONCLUSION: The structural, functional and in-silico studies of Dof transcription factor attempted so far reveals immense opportunity to analyze the plant genomes in terms of number of Dof genes and discuss in light of the evolution. The multiple functions of Dof genes needs to explored for crop improvement. Transcription factors play a very vital role in gene regulation at transcriptional level and are being extensively studied across phylas. In recent years, sequencing of plant genomes has led to genome-wide identification and characterizations of diverse types of plant-specific transcription factor gene family providing key insights into their structural and functional diversity. The DNA binding with one finger (Dof), a class belonging to C2H2-type zinc finger family proteins, is a plant-specific transcription factor having multiple roles such as seed maturation and germination, phytohormone and light-mediated regulation and plant responses to biotic and abiotic stresses. Dof proteins are present across plant lineage, from green algae to higher angiosperm, and represent a unique class of transcription factor having bifunctional binding activities, with both DNA and proteins, to regulate the complex transcriptional machinery in plant cells. The structural and functional diversity of the Dof transcription factor family along with the bioinformatics analysis highlighting the phylogeny of Dof families is reviewed in light of its importance in plant biotechnology for crop improvement.Item Genome wide in silico characterization of Dof transcription factor gene family of sugarcane and its comparative phylogenetic analysis with Arabidopsis, rice and sorghum(Springer, 2014) Gupta, Shubhra; Kushwaha, Hariom; Singh, Vinay Kumar; Bisht, Naveen C.; Sarangi, Bijaya Ketan; Yadav, DineshA total of 25 Dof genes were retrieved from GRASSIUS grass regulatory information server. These sequences were in silico characterized for homology search, multiple sequence alignment for conserved Dof DNA binding domains, distribution of conserved motifs and phylogenetic relatedness with sorghum, rice and Arabidopsis. A highly conserved four cysteine residues associated with typical zinc finger of Dof family was observed on multiple sequence alignment of Dof domains. A highly conserved cysteine residue at positions 3 and 6 along with proline and sulfur at positions 4 and 8, respectively were observed. The phylogenetic tree of 119 Dof protein sequences of sugarcane, rice, sorghum and Arabidopsis revealed ten distinct clades with several orthologs and paralogs. The distributions of 25 conserved motifs were analyzed for Dof proteins of sugarcane. Dof proteins with closely related members in the phylogenetic tree shared common motif distribution revealing the possibility of functional similarities within the same subgroup. The motif 1 representing the conserved Dof domain of 50 amino acids was uniformly observed in all the Dof proteins of sugarcane except ScDof8 and ScDof14.Item A multi-step phosphorelay two-component system impacts on tolerance against dehydration stress in common wheat(Springer, 2014) Gahlaut, Vijay; Mathur, Saloni; Dhariwal, Raman; Khurana, Jitendra P.; Tyagi, Akhilesh K.; Balyan, Harindra S.; Gupta, Pushpendra K.Wheat is an important staple crop, and its productivity is severely constrained by drought stress (DS). An understanding of the molecular basis of drought tolerance is necessary for genetic improvement of wheat for tolerance to DS. The two-component system (TCS) serves as a common sensor-regulator coupling mechanism implicated in the regulation of diverse biological processes (including response to DS) not only in prokaryotes, but also in higher plants. In the latter, TCS generally consists of two signalling elements, a histidine kinase (HK) and a response regulator (RR) associated with an intermediate element called histidine phosphotransferase (HPT). Keeping in view the possible utility of TCS in developing water use efficient (WUE) wheat cultivars, we identified and characterized 62 wheat genes encoding TCS elements in a silico study; these included 7 HKs, 45 RRs along with 10 HPTs. Twelve of the 62 genes showed relatively higher alterations in the expression under drought. The quantitative RT-PCR (qRT-PCR)-based expression analysis of these 12 TCS genes was carried out in wheat seedlings of a drought sensitive (HD2967) and a tolerant (Dharwar Dry) cultivar subjected to either dehydration stress or cytokinin treatment. The expression of these 12 genes under dehydration stress differed in sensitive and tolerant genotypes, even though for individual genes, both showed either up-regulation or down-regulation. In response to the treatment of cytokinin, the expression of type-A RR genes was higher in the tolerant genotype, relative to that in the sensitive genotype, the situation being reverse for the type-B RRs. These results have been discussed in the context of the role of TCS elements in drought tolerance in wheat.
