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Anupam Dixit

Publications and source records attributed to Anupam Dixit.

4 recordsLinked to original sources

Reverse transcriptase domain sequences from Mungbean (Vigna radiata) LTR retrotransposons: sequence characterization and phylogenetic analysis.

The conserved domains of reverse transcriptase (RT) genes of Ty1-copia and Ty3-gypsy groups of long terminal repeat (LTR) retrotransposons were amplified from mungbean (Vigna radiata) genome using degenerate primers, cloned and sequenced. Among these 34% and 65% of respective clones of copia and gypsy RT sequences possessed stop codons or frame-shifts or both. The RT sequences corresponding to both the groups exhibit significant levels of heterogeneity. Presence of mungbean copia and gypsy RT sequences in other papilionoid legumes of the same (Phaseoleae) and different lineages (Loteae, Trifoleae, Cicereae) indicates existence of these elements prior to the radiation of papilionoid legumes and also supports the recent interpretations of close relationship between Phaseoleae and Loteae tribes of Papilionoideae subfamily. On the other hand significant homologies of some mungbean copia as well as gypsy RT sequences with those of unrelated plant species suggest their origin from different plant lineages and also that heterogeneous population of related elements were already existed throughout (even before the divergence of monocot and dicot) the evolution of these genera from their common ancestor.

Amino Acid Sequence↗

Tissue engineering of small intestine--current status.

Short bowel syndrome (SBS) has always posed a great threat to patients and has been one of the biggest challenges for doctors due to its high morbidity and mortality. So far, parenteral nutrition (PN) and small bowel transplantation remain the only viable therapeutic options. However, sepsis and liver failure associated with PN and limited availability of the donor organs and high graft rejection rates associated with transplantation have limited their use to a nonpermanent solution. Clearly, there is a need for an alternative therapy whereby increasing the absorptive surface area would help neonates and adults suffering from permanent intestinal failure. Techniques such as sequential intestinal lengthening are being explored in animal models with little success. Attempts to engineer small intestine since the late 1980s have achieved varying degrees of success in animal models with evolving refinements in biotechnology. The most encouraging results so far have been the generation of intestinal neomucosa in the form of cysts when intestinal epithelial organoid units isolated from neonatal rats were seeded onto biodegradable polymers before implantation in syngeneic adult rats' omentum. Although still experimental, continued attempts worldwide using cultured stem cells and improved polymer technology offer promise to provide an off-the-shelf artificial intestine as a novel therapy for patients with SBS. This article reviews the current status of progress in the field of small intestinal tissue engineering and addresses various types of cell sources and scaffold material having potential to be used in this field.

Animals↗

Further evidence of microcolinearity between barley and rice genomes at two orthologous regions.

Two genetic markers, BCD135 and RZ567 were used to select clones from genomic BAC libraries of barley and rice for sequencing and subsequent sequence comparisons. A set of two orthologous BACs each from barley and rice was selected by hybridization with BCD135 and RZ567 cDNA probes. A total of 556-kb stretch including two barley BACs (773K135 and 745C13) and two orthologous rice BACs (24K23 and 49D11) was completely sequenced. Comparative sequence analysis between orthologous BACs from the two species revealed presence of two conserved genes at BCD135 region and only one gene at the RZ567 regions. The two conserved genes were in the same order and orientation in both the species however, separated by significantly larger distance in barley. The larger distance between two barley genes was mainly due to presence of different retrotransposable elements and their derivatives (78.9% of the intergenic region) that expanded the barley BCD135 region at the rate of 9.1X. An additional gene of unknown function was also inserted along with several retrotransposable elements between two conserved genes at barley BCD135 region. More genome expansion rate (10X) around barley RZ567 locus was estimated by extremely high proportion (> 70%) of retrotransposons. Among different retrotransposons, the Sabrina elements rather than BARE were more prevalent in both the regions. Contrary to it, the BCD135 region of rice was composed of only 17.1% retrotransposable elements and no significant retrotransposons except 14 miniature inverted transposable elements (MITEs) were observed in its RZ567 region. The sequence comparison between orthologous regions of rice and barley genomes was useful for gene identification and determination of individual gene structure indicating the possibility of effective utilization of rice genome sequences in understanding the large genome of barley. (The sequence data described in this paper have been submitted to the GenBank data library under the accession no. AF474072 (773K14), AF474071 (745C13), AF480497 (24K23) and AF480496 (49D11)).

Chromosomes, Artificial, Bacterial↗

Sequence analysis of the long arm of rice chromosome 11 for rice-wheat synteny.

The DNA sequence of 106 BAC/PAC clones in the minimum tiling path (MTP) of the long arm of rice chromosome 11, between map positions 57.3 and 116.2 cM, has been assembled to phase 2 or PLN level. This region has been sequenced to 10x redundancy by the Indian Initiative for Rice Genome Sequencing (IIRGS) and is now publicly available in GenBank. The region, excluding overlaps, has been predicted to contain 2,932 genes using different software. A gene-by-gene BLASTN search of the NCBI wheat EST database of over 420,000 cDNA sequences revealed that 1,143 of the predicted rice genes (38.9%) have significant homology to wheat ESTs (bit score >/= 100). Further BLASTN search of these 1,143 rice genes with the GrainGenes database of sequence contigs containing bin-mapped wheat ESTs allowed 113 of the genes to be placed in bins located on wheat chromosomes of different homoeologous groups. The largest number of genes, about one-third, mapped to the homoeologous group 4 chromosomes of wheat, suggesting a common evolutionary origin. The remaining genes were located on wheat chromosomes of different groups with significantly higher numbers for groups 3 and 5. Location of bin-mapped wheat contigs to chromosomes of all the seven homoeologous groups can be ascribed to movement of genes (transpositions) or chromosome segments (translocations) within rice or the hexaploid wheat genomes. Alternatively, it could be due to ancient duplications in the common ancestral genome of wheat and rice followed by selective elimination of genes in the wheat and rice genomes. While there exists definite conservation of gene sequences and the ancestral chromosomal identity between rice and wheat, there is no obvious conservation of the gene order at this level of resolution. Lack of extensive colinearity between rice and wheat genomes suggests that there have been many insertions, deletions, duplications and translocations that make the synteny comparisons much more complicated than earlier thought. However, enhanced resolution of comparative sequence analysis may reveal smaller conserved regions of colinearity, which will facilitate selection of markers for saturation mapping and sequencing of the gene-rich regions of the wheat genome.

Base Sequence↗