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D Chandrasekhar

Publications and source records attributed to D Chandrasekhar.

3 recordsLinked to original sources

In vivo formation and repair of cyclobutane pyrimidine dimers and 6-4 photoproducts measured at the gene and nucleotide level in Escherichia coli.

In vivo formation and repair of the major UV-induced DNA photoproducts, cyclobutane pyrimidine dimers (CPDs) and 6-4 pyrimidine-pyrimidone photoproducts (6-4 PPs), have been examined at the gene and nucleotide level in Escherichia coli. Each type of DNA photoproduct has individually been studied using photoreactivation and two newly developed assays; the multiplex QPCR assay for damage detection at the gene level and the reiterative primer extension (PE) assay for damage detection at the nucleotide level. In the E. coli lacI and lacZ genes, CPDs and 6-4 PPs form in a 2:1 ratio, respectively, during UV irradiation. Repair of 6-4 PPs is more efficient than repair of CPDs since, on the average, 42% of 6-4 PPs are repaired in both genes in the first 40 min following 200 J/m(2) UV irradiation, while 1% of CPDs are repaired. The location, relative frequency of formation, and efficiency of repair of each type of photoproduct was examined in the first 52 codons of the E. coli lacI gene at the nucleotide level. Hotspots of formation were found for each type of lesion. Most photoproducts are at sites where both CPDs and 6-4 PPs are formed. Allowing 40 min of recovery following 200 J/m(2) shows that in vivo repair of 6-4 PPs is about fourfold more efficient than the repair of CPDs. Comparison of the lesion-specific photoproduct distribution of the lacI gene with a UV-induced mutation spectrum from wild-type cells shows that most mutational hotspots are correlated with sites of a majority of CPD formation. However, 6-4 PPs are also formed at some of these sites with relatively high frequency. This information, taken together with the observation that 6-4 PPs are repaired faster than CPDs, suggest that the cause of mutagenic hotspots in wild-type E. coli is inefficient repair of CPDs.

Bacterial Proteins↗

High resolution mapping of UV-induced photoproducts in the Escherichia coli lacI gene. Inefficient repair of the non-transcribed strand correlates with high mutation frequency.

UV-induced DNA photoproduct formation and repair has been examined at the gene and nucleotide level in Escherichia coli using two newly developed quantitative assays. A multiplex quantitative PCR assay was used to measure photoproduct formation and repair at the gene level in both the constitutive lacI gene and the inducible lacZ gene, simultaneously. Both genes displayed similar photoproduct formation frequencies (0.4 lesions/kb per 100 J/m2). Following a 15 minute recovery period, 36% and 39% of the damage resulting from 100 J/m2 was removed from the lacI and lacZ genes, respectively. Under the growth conditions applied, the lacZ gene was expressed at a very low rate resulting in 0.3% of beta-galactosidase activity as compared to induced cells. A newly developed reiterative primer extension assay has been employed to examine photoproduct formation and repair at the nucleotide level. Analysis of UV-induced DNA photoproducts in the first 184 base-pairs of the lacI gene of genomic E. coli DNA has revealed that photoproducts are induced linearly with dose and the slope is sequence context-dependent. A post-irradiation recovery period revealed differences in the repair efficiency at individual nucleotides. Repair of photoproducts on the transcribed strand was generally twice as efficient as repair of photoproducts on the non-transcribed strand, indicating that strand-specific DNA repair occurs in the constitutively transcribed lacI gene of E. coli. Comparison of the UV-induced DNA photoproduct distribution with an established UV-induced mutation spectrum from wild-type cells revealed that photoproducts form at all mutagenic hotspots. Some sites of low frequency mutations were not observed to be sites of photoproduct formation. However, not all photoproducts appeared to be mutagenic. This was especially true for those on the efficiently repaired transcribed strand. It is hypothesized that the preferential repair of photoproducts on this strand may prevent many of these photoproduct sites from becoming mutagenic hotspots. These data strongly support the hypothesis that mutations arise at inefficiently repaired photoproducts on the nontranscribed strand.

Bacterial Proteins↗