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V Sampath

Publications and source records attributed to V Sampath.

11 recordsLinked to original sources

Rpb4, a non-essential subunit of core RNA polymerase II of Saccharomyces cerevisiae is important for activated transcription of a subset of genes.

A major role in the regulation of eukaryotic protein-coding genes is played by the gene-specific transcriptional regulators, which recruit the RNA polymerase II holoenzyme to the specific promoter. Several components of the mediator complex within the holoenzyme also have been shown to affect activation of different subsets of genes. Only recently has it been suggested that besides the largest subunit of RNA polymerase II, smaller subunits like Rpb3 and Rpb5 may have regulatory roles in expression of specific sets of genes. We report here, the role of Rpb4, a non-essential subunit of core RNA polymerase II, in activation of a subset of genes in Saccharomyces cerevisiae. We have shown below that whereas constitutive transcription is largely unaffected, activation from various promoters tested is severely compromised in the absence of RPB4. This activation defect can be rescued by the overexpression of cognate activators. We have localized the region of Rpb4 involved in activation to the C-terminal 24 amino acids. We have also shown here that transcriptional activation by artificial recruitment of the TATA-binding protein (TBP) to the promoter is also defective in the absence of RPB4. Surprisingly, the overexpression of RPB7 (the interacting partner of Rpb4) does not rescue the activation defect of all the promoters tested, although it rescues the activation defect of the heat shock element-containing promoter and the temperature sensitivity associated with RPB4 deletion. Overall, our results indicate that Rpb4 and Rpb7 play independent roles in transcriptional regulation of genes.

Amino Acid Sequence↗

Anesthetic-like interactions of nitric oxide with albumin and hemeproteins. A mechanism for control of protein function.

Noncovalent bonding interactions of nitric oxide (NO) with human serum albumin (HSA), human hemoglobin A, bovine myoglobin, and bovine cytochrome c oxidase (CcO) have been explored. The anesthetic nitrous oxide (NNO) occupies multiple sites within each protein, but does not bind to heme iron. Infrared (IR) spectra of NNO molecules sequestered within albumin, with NO present, support the binding of NO and NNO to the same sites with comparable affinities. Perturbations of IR spectra of the Cys(34) thiol of HSA indicate NO, NNO, halothane, and chloroform can induce similar changes in protein structure. Experiments evaluating the relative affinities of binding of NO and carbon monoxide (CO) to iron(II) sites of the hemeproteins led to evidence of NO binding to noniron, nonsulfur sites as well. With HbA, IR spectra of cysteine thiols and/or the iron(II) N-O stretching region denote changes in protein structure due to NO, NNO, or CO occupying noniron sites with an order of decreasing affinities of NO > NNO > CO. Loss of NO from some, not all, noniron sites in hemeproteins is very slow (t(1/2) approximately hours). These findings provide examples in which NO and anesthetics alter the structure and properties of protein similarly, and support the hypothesis that some physiological effects of NO (and possibly CO) result from anesthetic-like noncovalent bonding to sites within protein or other tissue components. Such bonding may be involved in mechanisms for control of oxygen transport, mitochondrial respiration, and activation of soluble guanylate cyclase by NO.

Animals↗

Potential roles of myoglobin autoxidation in myocardial ischemia-reperfusion injury.

The source(s) of reactive partially reduced oxygen species associated with myocardial ischemia/reperfusion injury remain unclear and controversial. Myoglobin has not been viewed as a participant but is present in relatively high concentrations in heart muscle and, even under normal conditions, undergoes reactions that generate met (Fe3+) species and also superoxide, hydrogen peroxide, and other oxidants, albeit slowly. The degree to which the decrease in pH and the freeing of copper ions, as well as the variations in pO2 associated with ischemia and reperfusion increase the rates of such myoglobin reactions has been investigated. Solutions of extensively purified myoglobin from bovine heart in 50 mM sodium phosphate buffer were examined at 37 degrees C. Sufficiently marked rate increases were observed to indicate that reactions of myoglobin can indeed contribute substantially to the oxidant stress associated with ischemia/reperfusion injury in myocardial tissues. These findings provide additional targets for therapeutic interventions.

Animals↗

Cytochrome c oxidase catalysis of the reduction of nitric oxide to nitrous oxide.

Reduction of nitric oxide (NO) to nitrous oxide (N2O) is catalyzed by bovine heart cytochrome c oxidase (CcO) in anaerobic solutions at pH 7.2 and 20 degrees C. Cyanide inhibits and forms Fea3(3+)CN. The mononitrosyl (Fea3(2+)NO), but not the dinitrosyl (Fea3(2+)NO; CuB+NO), is a likely intermediate in N2O formation. One-electron reduction of NO at Fea3(2+) could yield N2O via HNO. However, a two-electron reduction of the NO ligand to give an intermediate that reacts with a second NO to give N2O and H2O appears more likely. Conversion of NO to N2O is favored by low levels of both NO and O2, higher NO levels can inhibit both cytochrome c oxidase and NO reductase activities. Raising the O2 level will favor catalysis of NO oxidation to NO2 by CcO. The reactions of NO and the specific CcO activity that occur in tissue will be critically dependent on NO, O2, and CcO levels.

Animals↗

Infrared characterization of nitric oxide bonding to bovine heart cytochrome c oxidase and myoglobin.

The stable binding of nitric oxide to both Cu+B and Fe2+a3 in cytochrome c oxidase is shown in infrared spectra. The N-O stretch band for Fe2+a3-NO at 1610 cm-1 is similar to the band for MbNO at 1612 cm-1. The Cu+B-NO band is at 1700 cm-1. Thus, electron donation from metal to NO is greater with Fe2+a3 than Cu+B. However, the affinity for NO is only slightly greater at Fe2+a3 than at Cu+B. In contrast CO binds stably only to Fe2+a3. Infrared spectra of oxidase, myoglobin and hemoglobin NO and CO complexes are consistent with only one stable protein structure at the ligand binding site of nitrosyls and with dynamic multiple protein conformers at carbonyl sites. The binding of NO to both Cu+B and Fe2+a3 of cytochrome c oxidase can contribute to NO cytotoxicity and to the catalysis of NO reduction to N2O and makes possible the effective use of infrared spectroscopy in investigations of Cu as well as Fe at the binuclear O2 reduction sites of oxidases.

Animals↗

Characterization of sites occupied by the anesthetic nitrous oxide within proteins by infrared spectroscopy.

We report here a comprehensive infrared spectroscopic study of the interactions between the anesthetic nitrous oxide (N2O) and six proteins: lysozyme, cytochrome c, myoglobin, hemoglobin, serum albumin, and cytochrome c oxidase. Sites occupied by N2O molecules within these proteins were characterized. Three types of hydrophobic sites were found within the proteins. One with nu 3 near 2225 cm-1 is likely to be near peptide bond carbonyls; one with nu 3 near 2219 cm-1 may be near a benzene-like structure such as the side chains of phenylalanine and tyrosine; and the other with nu 3 near 2215 cm-1 is likely to be in a nonpolar alkane-like environment provided by the side chains of Leu, Ile, and Val residues. The amount of N2O molecules bound to myoglobin increases as the pH decreases from 9.2 to 5.2. N2O-protein interactions produced no detectable changes in the ligand-binding pockets of myoglobin, hemoglobin, and cytochrome c oxidase. N2O-induced secondary structure changes were detected only in the fully reduced cytochrome c oxidase, not in the fully oxidized oxidase and the other five proteins. N2O-induced conformational changes in the alpha beta-interface of hemoglobin and the h2 and h3 alpha-helices of human serum albumin were detected by monitoring the S-H stretch vibrations of cysteine residues. These findings provide direct evidence that anesthetic N2O interacts with proteins and occupies sites in the interior of the proteins.

Adult↗

Characterization of interactions of nitric oxide with human hemoglobin A by infrared spectroscopy.

Infrared spectra permit direct measurements of cysteine thiols as well as nitric oxide bound to heme iron in human hemoglobin A nitrosyl. A single symmetric N-O stretch band of nitric oxide bound to Fe2+ is detected amid strong water and protein bands in the Hb14N16O minus Hb15N16O difference spectrum. Nitric oxide accepts electron density from metal in bent-end-on FeI2+)-14N-16O (nu NO = 1616.5 cm-1) and donates electron density to metal in linear Fe(3+)-14N-16O (nu NO = 1925 cm-1). S-H stretch bands reveal that changes in protein conformation occur at alpha-104, beta-93, and beta-112 cysteines upon conversion of deoxyHb to HbNO but that no reactions of thiols with NO occur. Furthermore, no infrared band for S-nitrosothiol is detected. Changes in amide I spectra reflect NO binding induced changes in protein secondary structure.

Binding Sites↗

Probing heart cytochrome c oxidase structure and function by infrared spectroscopy.

IR spectra directly probe specific vibrators in bovine heart cytochrome c oxidase, yielding quantitative as well as qualitative information on structures and reactions at these vibrators. C-O IR spectra reveal that CO binds to Fe2+ a3 as two conformers each in isolated immobile environments sensitive to Fea and/or CuA oxidation state but remarkably insensitive to pH, medium, anesthetics, and other factors that affect activity. C-N IR spectra reveal that the one CN- that binds to fully and partially oxidized enzyme can be in three different structures. These structures vary in relative amounts with redox level, thereby reflecting dynamic electron exchange among Fea, CuA, and CuB with associated changes in protein conformation of likely significance in O2 reduction and H(+)-pumping. Azide IR spectra also reflect redox-dependent long-range effects. The amide I IR bands, due to C-O vibrators of peptide linkages and composed of multiple bands derived from different secondary structures, reveal high levels of alpha-helix (approximately 60%) and subtle changes with redox level and exposure to anesthetics. N2O IR spectra reveal that these anesthetic molecules at clinically relevant levels occupy three sites of different polarity within the enzyme as the enzyme is reversibly, but only partially, inhibited.

Animals↗

Spectroscopic studies of an insect hemoglobin from the backswimmer Buenoa margaritacea (Hemiptera:Notonectidae).

Hemoglobin (Hb) isolated from the backswimmer Buenoa margaritacea has been analyzed spectroscopically. The met form at pH less than 6 shows a 30nm red shift in the Qv and Qo bands and a 5nm red shift in the Soret band compared to mammalian Hb, while only minor differences are seen in the spectra of the CO and O2 adducts of Hb from Buenoa and mammals. EPR spectra of the metHb show a superposition of signals; at low pH they are mainly of axial high-spin character, while at high pH a low-spin signal predominates with an O-type g-tensor (2.54, 2.61, 1.85) comparable to that of hydroxy myoglobin. Infrared spectra of Hb12C-16O at pH 8.2 reveal two major absorption bands at 1934 cm-1 and 1967 cm-1, which shift to 1892 cm-1 and 1923 cm-1, respectively, for Hb12C-18O. As isolated the Buenoa Hb consists of several isozymes, all of which have a histidine as the proximal ligand of the heme iron.

Animals↗