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D Chatterji

Publications and source records attributed to D Chatterji.

At least 37 records · Page 2Linked to original sources

Ammonium ion at low concentration stabilizes the G-quadruplex formation by telomeric sequence.

A synthetic analog of telomeric DNA, d(T6G16) or d(G4T2G4T2G4T2G4) was found to form G-quadruplex structure in NH4-ion environments as low as 1 mM. Other counter ions like K(I) or Sr(II) known to have a stabilizing effect on G-tetrad require much higher concentrations. The multiconformational form of G-tetrad could be identified in NH4(I) upon heating the sample up to 100 degrees C. Circular dichroism spectral studies indicated that on thermally treating the complex NH4(I) ion helps in intramolecular G-tetrad formation over intermolecular association. However the G-tetrad structure formed in NH4(I) was found to be unstable in the presence of intercalator Actinomycin D or Tb(III) ion. It appears that the ionic radius of NH4(I) influence tight fitting of this ion inside the cavity of the tetrad. The stability of G-tetrad in the presence of very low concentration of NH4(I) may have potential applications in future.

DNA↗

Evidence for a ppGpp-binding site on Escherichia coli RNA polymerase: proximity relationship with the rifampicin-binding domain.

On amino acid starvation, Escherichia coli cells exhibit an adaptive facility termed the stringent response. This is characterized by the production of high levels of a regulatory nucleotide, ppGpp, and concomitant curtailment in rRNA synthesis. Various studies reported earlier indicated that RNA polymerase is the site of action of ppGpp although a direct demonstration of the interaction of ppGpp with E. coli RNA polymerase is still lacking. Here we report the labelling of ppGpp with a fluorescent probe, 1-aminonapthalene-5-sulphonate (AmNS), at the terminal phosphates. AmNS-ppGpp responded much like a ppGpp molecule in an in vitro total transcription assay at selective promoters. Fluorescence titration of the tryptophan emission of RNA polymerase by AmNS-ppGpp indicated a unique binding site in the absence of template DNA. Competition experiments showed that unlabelled ppGpp binds to the enzyme at the same site. Sigma factor seems to have no effect on this binding. The titration profile is also characterized by a single slope in the Scatchard analysis. The presence of GTP or GDP does not influence the binding of AmNS-ppGpp with RNA polymerase. Forster's distance measurement was carried out which placed AmNS-ppGpp 27 A away from the rifampicin-binding domain of RNA polymerase.

Bacterial Proteins↗

Time-resolved emission spectroscopy as a tool to follow nucleic acid-protein interaction.

Fluorescence spectroscopy is undoubtedly a useful tool to study the structural and functional aspects of nucleic acids-protein interactions as well as the catalytic functions of particular residues of multi-subunit enzyme complexes. The dynamic interaction of nucleic acids and proteins occurring at nanosecond time scale can now be monitored by making life-time measurements or by time-resolved emission spectroscopy. These measurements are made by exploiting the intrinsic fluorescent residues in proteins i.e. W or by the use of extrinsic fluorophores which are tagged on to particular residues and that are sensitive to the microenvironment changes. In this study we describe the use of time resolved emission spectroscopy to (a) analyse the transient binding between sigma 70 and DNA by monitoring the quenching of W residues and (b) monitor the various states which nucleosomes of active, inducible or inactive chromatin may adopt in vivo.

Animals↗

Evidence for a pyrimidine-nucleotide-specific initiation site (the i site) on Escherichia coli RNA polymerase. Proximity relationship with the inhibitor binding domain.

Escherichia coli RNA polymerase has two sites, the i and i + 1, for the binding of the first two substrates. The i site is template- and Mg(2+)-independent and purine-nucleotide-specific, whereas the i + 1 site is template- and Mg(2+)-dependent and shows no nucleotide preference. The specificity of the i site for purine nucleotides is well in accord with the fact that most promoters initiate with a purine nucleotide. But there are a few promoters that initiate with a pyrimidine nucleotide. Dinucleotide synthesis at these promoters is completely inhibited by rifampicin. Earlier studies have failed to identify an i site for pyrimidine nucleotides. In this paper, using a fluorescent analog of UTP, namely uridine 5'-[gamma-(5-sulfonic acid)naphthylamidate]-triphosphate, abbreviated as UTP[AmNS], we are able to show its binding to RNA polymerase, with a Kd of 0.8 microM, in the absence of Mg2+ and template. This suggests the presence of an i pyrimidine nucleotide site. The fact that UTP-[AmNS] is capable of initiating RNA synthesis from the i site is further evidenced by the abortive transcription analyses at the lac promoter. Fluorescence titration studies performed in the presence and absence of purine initiator molecules indicate that this site is different from the i purine site. Scatchard analysis of the above data indicates the presence of a single binding site for UTP[AmNS] in the absence of Mg2+. Moreover UTP[AmNS] binds to the core enzyme with a Kd of 3.0 microM implying that, unlike the i purine nucleotide site, the sigma protein confers a tighter binding of UTP-[AmNS] to the low-Kd site. Forster's energy transfer measurements using UTP[AmNS] as the donor and rifampicin as the acceptor have been used for estimation of the distance of the i pyrimidine nucleotide site from the rifampicin site. From these measurements, we infer that there is no direct interference of rifampicin with the first phosphodiester bond between two pyrimidine nucleotides.

Binding Sites↗

A point mutation at the junction of domain 2.3/2.4 of transcription factor sigma 70 abrogates productive transcription and restores its expected mobility on a denaturing gel.

Region 2 of eubacterial sigma factors is highly conserved and the subdomain 2.4 is involved in -10 promoter recognition. An evolutionary conserved "RpoD box" has been identified at the junction of subdomain 2.3/2.4 in class I and class II sigma factors and there are two tryptophan residues at position 433 and 434 which can be used as intrinsic fluorescent markers to study their structure-function relationship. Site-directed mutagenesis of these two tryptophan residues has been carried out to generate three variants of sigma 70 of Escherichia coli RNA polymerase. These are W433F, W433G and W434G. sigma 70-W433F is found to be indistinguishable from the native sigma factor by both structural and functional analysis. sigma 70-W433G shows anomalous mobility on SDS-PAGE like the native sigma factor, is alpha-helical in conformation (50% helicity) although found to be less active in total transcription when reconstituted with core RNA polymerase. Free sigma 70-W434G, unlike the native sigma factor, shows the expected mobility of a 70 kDa protein on SDS-PAGE and has 20% helicity. Time-resolved fluorescence analysis indicates that free sigma 70-W434G has DNA binding ability, and displays a normal abortive initiation reaction but a decreased level of productive transcription after reconstitution with core RNA polymerase. A model is proposed in which tryptophan at position 434 interacts with the hydrophobic 1.1 domain of sigma 70 giving rise to the stability of the protein under denaturing conditions.

Amino Acid Sequence↗

Accurate transcription initiation by RNA polymerase II from Candida utilis.

An in vitro transcription system from Candida utilis is described. The template used is a hybrid plasmid containing Saccharomyces cerevisiae CYC1 promoter linked to a synthetic 377-bp G-minus casette (1). In vitro transcriptions are carried out in the presence of RNase. T1. Under these conditions only the transcripts that are resistant to RNase T1 accumulate. Using this protocol, it has been shown that in the absence of cytosolic factors RNA polymerase II (pol II) from C. utilis initiated RNA synthesis randomly. But both C. utilis and S. cerevisiae cell-free extracts could direct pol II from C. utilis to initiate transcription accurately. Results also indicated that the general transcription factors are functionally interchangeable between S. cerevisiae and C. utilis.

Candida↗

Mechanism of initiation of transcription by Escherichia coli RNA polymerase on supercoiled template.

DNA supercoiling is known to influence the pattern of gene expression in prokaryotes. Thus the mechanism of transcription initiation and the topological state of the template are intimately related. Using in vitro reconstituted transcription assays, composed of purified RNA polymerase and promoters in their natural topological state, we have conducted a detailed study of transcription initiation from T7 early promoters including the following steps: the formation of ternary complexes, acquisition of rifampicin resistance, release of sigma factor and the capacity for RNA chain elongation in complexes. We determined the order of these events and the length of the transcripts when each step occurred during initiation of transcription on supercoiled templates. The length of the transcripts varied in a promoter-specific manner. Analysis of abortive products formed during the initiation showed that stronger promoters go to the elongation mode at transcript lengths shorter than that required for weaker promoters.

Bacterial Proteins↗

Proximity relationship between the active site of Escherichia coli RNA polymerase and rifampicin binding domain: a resonance energy-transfer study.

Escherichia coli RNA polymerase has two subsites, i and i + 1, for the binding of the first two substrates, and the first phosphodiester bond is formed between them during the initiation of transcription. Various studies have shown earlier that the inhibitor rifampicin has little effect, if any, on the formation of this phosphodiester bond. On an earlier occasion, we measured the distance of the i nucleotide from the rifampicin binding site on RNA polymerase using Forster's energy-transfer mechanism [Kumar & Chatterji (1990) Biochemistry 29,317]. In this paper, the 1-aminonaphthalene-5-sulfonic acid (AmNS) derivative of UTP in the presence of 10 mM MgCl2 was used as an energy donor, and its distance from rifampicin was estimated. The modified nucleotide (gamma-AmNS)-UTP binds to RNA polymerase with a Kd of 3 microM and has one binding site in the presence of Mg(II) ion. Fluorescence titration studies performed with or without an initiator indicated that (gamma-AmNS)-UTP exclusively binds to RNA polymerase at the (i + 1) site in the presence of Mg(II). Rifampicin was found to form a 1:1 complex with RNA polymerase bound to labeled UTP. Rifampicin and (gamma-AmNS)-UTP have a substantial spectral overlap with an energy-transfer efficiency close to 50%. Labeled UTP shows a decrease in its excited-state lifetime when bound to the enzyme; the transfer efficiency calculated from lifetime measurements was found to be lower than that estimated from steady-state spectral analysis. Time-resolved emission spectral analysis was carried out to differentiate between the free and bound UTP over the enzyme surface.(ABSTRACT TRUNCATED AT 250 WORDS)

Binding Sites↗

DNA intervention in transcriptional activation.

Accurate initiation of eukaryotic mRNA synthesis takes place as a result of the interplay between general transcription factors and RNA polymerase II. Activation of transcription from the basal level involves a number of promoter-specific trans-acting factors which interact with cis elements in the promoter DNA. In this paper we have emphasized the importance of even those portions of the promoter stretch which do not have any identifiable binding sites for regulatory proteins. The length and structure of the DNA between cognate binding sites of trans-acting factors may interfere with the level of transcriptional activation. Depending upon the length of the intervening DNA we describe three cases of transcriptional activation. In addition, based on this classification we propose a new third domain, the other two being DNA binding and transcriptional activation domains, which is involved in bending the intervening DNA so that activation from a distance can take place successfully.

DNA↗

Differential inhibition of abortive transcription initiation at different promoters catalysed by E. coli RNA polymerase. Effect of rifampicin on purine or pyramidine-initiated phosphodiester synthesis.

The action of rifampicin on the RNA chain initiation catalysed by E. coli RNA polymerase over different templates has been studied. The steady-state formation of dinucleoside tetraphosphate under the condition of abortive initiation reaction was assayed. It was observed that rifampicin shows a spectrum of inhibitory effects on transcription initiation at different promoters. At two different promoters with a pyrimidine nucleotide at the 5'-initiation site, e.g. rrnB P2 having CTP and lacP2 having UTP, the effect of rifampicin on the abortive synthesis of the first phosphodiester bond was found to be total, even at low concentrations of the antibiotic. On the other hand, in most cases the effect of rifampicin on the abortive synthesis with a purine nucleotide at the 5'-initiation site was found to be only partial, with the exception of the T7A2 promoter, where rifampicin stimulates the abortive synthesis of pppGpC. It was also noticed that if there was a purine nucleotide at the second position of a dinucleotide which had already been synthesised by the enzyme, then further addition of the third nucleotide was not blocked in the presence of rifampicin. It appeared that a purine nucleotide at the initiation site or at the product terminus site of a translocated dinucleotide behaved similarly towards rifampicin. In the same way, if this position was occupied by a pyrimidine, rifampicin would inhibit further phosphodiester synthesis, even at a very low concentration. The stimulatory effect of rifampicin at the T7A2 promoter was presumably because here a ternary complex containing the promoter, enzyme and the abortive transcript pppGpC was initially stable, but dissociated upon addition of rifampicin, resulting in the rapid turn-over of the product.

Base Sequence↗

Molecular anatomy of the transcription complex of Escherichia coli during initiation.

Transcription is the foremost event in gene expression in which the enzyme RNA polymerase copies the genetic information from DNA to RNA. Much of our understanding of this process have come from studies carried out in Escherichia coli. A faithful and efficient transcription machinery of E. coli can be reconstituted in vitro with purified RNA polymerase and promoter-containing DNA. It is generally believed that in E. coli and most other organisms, the control of gene expression lies with the initiation of transcription. In this review, an attempt has been made to understand the mechanistic details of the initiation of transcription from the structural point of view of the promoter and the RNA polymerase. Allosteric nature of the enzyme has also been discussed at the end.

Allosteric Regulation↗

Interaction of the Mnt repressor with 37-base pair synthetic operator DNA fragments. Importance of symmetric GC pairs.

Mnt repressor is indirectly responsible for the maintenance of lysogeny of the phage P22. This repressor interacts with a 21-base pair operator DNA constituting within it a 17-base pair perfect 2-fold symmetric sequence whose bases make a direct contact with the protein. We have synthesized six 37-base pair DNAs consisting of 21 base pair natural operator and its modifications in which certain symmetrically situated GC base pairs were replaced systematically with ATs to understand their importance. The binding interaction studies of Mnt repressor to such natural and modified operator DNAs reported here indicate that the GCs close to the center of symmetry make major contacts with the protein whereas, GCs nearer to the periphery form weak contacts. Methylation protection experiments indicated that when the GCs near the center of symmetry were replaced with AT, the central GC became more accessible for dimethyl sulfate methylation with possible conformational change in DNA. The circular dichroism studies indicated that upon repressor binding conformational changes in DNA takes place with a possible increase in helicity of the repressor protein.

Base Composition↗

Correlation between the DNA supercoiling and the initiation of transcription by Escherichia coli RNA polymerase in vitro: role of the sequences upstream of the promoter region.

Binding of Escherichia coli RNA polymerase and the abortive initiation of transcription at the A2 promoter of bacteriophage T7, separately cloned in pBR322, was found to be strongly dependent on the degree of supercoiling of the plasmid. Supercoiling does not seem to play any role in the initiation of transcription at the T7A1 promoter under identical conditions. Plasmid containing T7A2 promoter was found to be less amenable to S1 nuclease in comparison to that having T7A1. Sequence comparison reveals a high G/C content upstream to the -35 region of T7A2 which by extra duplex stability probably renders the initiation of transcription more dependent on the state of supercoiling of the template.

Base Sequence↗

Resonance energy transfer study on the proximity relationship between the GTP binding site and the rifampicin binding site of Escherichia coli RNA polymerase.

Terbium (III) upon complexation with guanosine 5'-triphosphate showed remarkable enhancement of fluorescence emission at 488 and 545 nm when excited at 295 nm. Analysis of the binding data yielded a value for the mean Kd between Tb(III) and GTP of 0.2 microM, with three binding sites for Tb(III) on GTP. 31P and 1H NMR measurements revealed that Tb(III) mainly binds the phosphate moiety of GTP. Fluorescence titration of the emission signals of the TbGTP complex with varying concentrations of Escherichia coli RNA polymerase resulted in a Kd value of 4 microM between the TbGTP and the enzyme. It was observed that TbGTP can be incorporated in the place of GTP during E. coli RNA polymerase catalyzed abortive synthesis of dinucleotide tetraphosphate at T7A2 promoter. Both the substrate TbGTP and the inhibitor of the initiation of transcription rifampicin bind to the beta-subunit of E. coli RNA polymerase. This allows the measurement of the fluorescence excited-state energy transfer from the donor TbGTP-RNA polymerase to the acceptor rifampicin. Both emission bands of Tb(III) overlap with the rifampicin absorption, and the distances at 50% efficiency of energy transfer were calculated to be 28 and 24 A for the 488- and 545-nm emission bands, respectively. The distance between the substrate binding site and the rifampicin binding site on the beta-subunit of E. coli RNA polymerase was measured to be around 30 A. This suggests that the nature of inhibition of transcription by rifampicin is essentially noncompetitive with the substrate.

Binding Sites↗

Inhibition of the first phosphodiester bond formation catalyzed by Escherichia coli RNA polymerase in the presence of bovine seminal plasmin: promoter dependency.

Inhibition of the abortive initiation of transcription catalyzed by E. coli RNA polymerase has been studied here in the presence of bovine seminal plasmin. Seminal plasmin, which is known to be a stronger inhibitor than rifampicin binds at the same site as rifampicin to RNA polymerase. However, unlike rifampicin, seminal plasmin showed the inhibition of the formation of both the first and second phosphodiester bonds. We observed, in vitro, that the degree of inhibition of transcription was different at different promoters. Thus, the percent of inhibition of transcription initiation by seminal plasmin was much less at r-RNA promoters in comparison to that at the early promoters of bacteriophage T7.

Animals↗

Spectroscopic studies on the mode of binding of ATP, UTP and alpha-amanitin with yeast RNA polymerase II.

The binding affinity between the substrates ATP and UTP with the purified yeast RNA polymerase II have been studied here in the presence and absence of Mn2+. In the absence of template DNA, both ATP and UTP showed tight binding with the enzyme without preference for any specific nucleotide, unlike Escherichia coli RNA polymerase. Fluorescence titration of the tryptophan emission of the enzyme by nucleoside triphosphate substrates gave an estimated Kd value around 65 microM in the absence of Mn2+ whereas in the presence of Mn2+, the Kd was 20 microM. The effect of substrates on the longitudinal relaxation of the HDO proton in enzyme-substrate complex also yielded a similar Kd value.

Adenosine Triphosphate↗

Bovine seminalplasmin [corrected] is a DNA unwinding protein.

The duplex DNA unwinding ability of seminalplasmin [corrected] from bovine semen was examined by treatment of plasmid-protein complexes with calf thymus topoisomerase I and resolution of the topoisomer distributions by agarose gel electrophoresis. Binding of seminalplasmin [corrected] results in a moderate degree of unwinding of supercoiled plasmid. The elongation of the RNA chain by E. coli RNA polymerase over promoter containing template is not inhibited by seminalplasmin [corrected]. However, the reinitiation of transcription is blocked in such cases indicating that seminalplasmin [corrected] inhibits transcription by binding to the initiation site of RNA polymerase.

Animals↗