Institutional Publications
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Item Complete genome dynamics of a dominant-lineage strain of Xanthomonas oryzae pv. oryzae harbouring a novel plasmid encoding a type IV secretion system(Microbiology Society, 2019) Kaur, Amandeep; Bansal, Kanika; Kumar, Sanjeet; Sonti, Ramesh V.; Patil, Prabhu B.Xanthomonas oryzae pv. oryzae (Xoo) is a serious pathogen causing bacterial blight disease in rice. Population genomic studies have revealed that rampant inter-strain rather than inter-lineage differences are contributing to the evolutionary success of this pathogen. Here, we report the complete genome sequence of BXO1, a strain of Xoo belonging to a dominant lineage from India. A complete genome-based investigation revealed the presence of two plasmids, pBXO1-1 (66.7kb) and pBXO1-2 (25.6kb). The pBXO1-1 plasmid encodes 71 genes, 38 of which encode hypothetical proteins of unknown function. However, these hypothetical genes possess atypical GC content, pointing towards their acquisition and movement through horizontal gene transfer. Interestingly, pBXO1-2 encodes a type IV secretion system (T4SS), which is known to play an important role in the conjugative transfer of genetic material, and also provides fitness to pathogenic bacteria for their enhanced survival. Neither plasmid has been reported previously in any other complete Xoo genome published to date. Our analysis also revealed that the pBXO1-2 plasmid is present in Xanthomonas albilineans str. GPE PC73, which is known to cause leaf scald, a lethal disease in sugarcane. Our complete genome sequence analysis of BXO1 has provided us with detailed insights into the two novel strain-specific plasmids, in addition to decoding their functional capabilities, which were not assessable when using the draft genome sequence of the strain. Overall, our study has revealed the mobility of a novel T4SS in two pathogenic species of Xanthomonas that infect the vascular tissues of two economically important monocot plants, i.e. rice and sugarcane.Item Genome-wide characterization of Major Intrinsic Protein (MIP) gene family in Brachypodium distachyon(Bentham Science, 2018) Saddhe, Ankush Ashok; Shweta; Mosa, Kareem A.; Kumar, Kundan; Prasad, Manoj; Dhankher, Om ParkashBackground: Major intrinsic proteins (MIPs) are membrane channel proteins which maintain water homeostasis and permeable to small molecules across the membrane. Objective: Genome analysis of Brachypodium MIPs (BdMIPs) gene family and in silico studies are based on available bioinformatic tools. Further comparison and evolutionary study of MIPs members were performed within grass family. Method: MIPs sequences were retrieved from Gramene database, aligned and weblogo was generated. Physio-chemical analysis was performed and phylogenetic tree was constructed by neighbor-joining. In silico expression profile of BdMIP genes was searched and image maps were generated by CIMMiner web-based server. Result: Genome wide analysis of B. distachyon identified 33MIP genes and classified into four major groups. Analysis of motifs and transmembrane domains strongly supported their identity as a member of the MIP super family. Duplication analysis revealed that 4 genes were tandemly duplicated and no segmental duplication events in BdMIPs were observed. Prediction of cis-elements in BdMIP promoter region gave more insight into regulation mechanism under hormonal and stress conditions. In silico expression profile under development stages provided insight into expression pattern of BdMIP genes. Conclusion: Total 33 MIPs were predicted in Brachypodium genome. Tandem duplication event was dominant phenomenon over segmental duplication in BdMIPs. Orthology analysis revealed Brachypodium MIP members were close to grass family MIP members compared to Arabidopsis. Compilation of this work will significantly contribute to the understanding of an evolutionary and biological importance of MIP genes in grass family and thus provide a set up for functional genomics studies in Brachypodium.
