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Kunal B Roy

Publications and source records attributed to Kunal B Roy.

3 recordsLinked to original sources

A palindromic repeat sequence adopts a stable fold back structure under supercoiling.

A synthetic deoxyoligonucleotide containing five palindromic repeats of GGATCC self assembles to form a parallel four-stranded structure held together by G-tetrads that shows slower mobility than duplex DNA. This structure is hypersensitive to S1 nuclease and resistant to DMS modification. The same oligonucleotide when cloned in a plasmid forms a different structure under supercoiling that persists stably even in the cleaved out insert. On polyacrylamide gel electrophoresis, the cleaved out insert moves to a position midway between the duplex and parallel four-stranded forms of the oligonucleotide. Upon S1 nuclease treatment, the cleaved out insert shows a discreet band of 18 base pairs, suggesting an unfolded region in the middle. All the guanines in the cleaved out insert are sensitive to DMS modification and produce a positive peak at 285 nM in the circular dichroism spectrum, a signature of fold back tetraplex structures. We propose a fold back quadruplex structure for the insert under supercoiling with only A.T.A.T and G.C.G.C tetrads. This is the first suggestive evidence of a general tetraplex motif without G quartets as that proposed for generalized recombination.

Base Sequence↗

Rec A-independent homologous recombination induced by a putative fold-back tetraplex DNA.

We have recently reported that a GC-rich palindromic repeat sequence presumably adopts a stable fold-back tetraplex DNA structure under supercoiling. To establish the biological significance of this structure, we inserted this sequence between two direct repeat sequences, separated by 200 bp, in a plasmid. We then investigated the effect of this sequence on homologous recombination events. Here we report that the putative fold-back DNA tetraplex structure induces homologous recombination between direct repeat sequences. Interestingly, this recombination event is independent of recA, a major driving force for homologous recombination. We think that the fold-back structure forces the repeat sequences to come into close proximity and therefore leads to strand exchange. Although triplex-induced recombination has been well documented, our results for the first time directly establish the potential of a tetraplex structure to induce recA-independent homologous recombination in vivo. This finding might have a significant implication for site-directed gene deletion in the context of the correction of genetic defects.

Base Sequence↗

Isolation, part characterization, immunogenicity, and specificity study of Plasmodium falciparum culture supernatant.

A Plasmodium falciparum malaria blood stage antigen was isolated from in vitro parasite culture supernatant. The chemical composition of the antigen was studied by high-performance thin-layer chromatography, thin-layer chromatography, gas-liquid chromatography, and other chemical methods. Such analysis indicated it to be a glycophospholipid (GPL) and to be composed of xylose, mannose, galactose, and glucose linked to a phospholipid, but no inositol. The extracted and purified antigen's sensitivity and specificity properties were assessed by laser immuno assay and enzyme-linked immunosorbent assay. The results of the sensitivity study showed a very high malaria antibody-binding response compared to other known antigens. The specificity study of GPL antigen with different nonmalarial samples showed no positive response within the limit of significance. This isolated GPL antigen appears to be better than other antigens.

Animals↗