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A M Rosengren

Publications and source records attributed to A M Rosengren.

At least 19 recordsLinked to original sources

Crystal structure of dUTPase from equine infectious anaemia virus; active site metal binding in a substrate analogue complex.

The X-ray structures of dUTPase from equine infectious anaemia virus (EIAV) in unliganded and complexed forms have been determined to 1.9 and 2.0 A resolution, respectively. The structures were solved by molecular replacement using Escherichia coli dUTPase as search model. The exploitation of a relatively novel refinement approach for the initial model, combining maximum likelihood refinement with stereochemically unrestrained updating of the model, proved to be of crucial importance and should be of general relevance.EIAV dUTPase is a homotrimer where each subunit folds into a twisted antiparallel beta-barrel with the N and C-terminal portions interacting with adjacent subunits. The C-terminal 14 and 17 amino acid residues are disordered in the crystal structure of the unliganded and complexed enzyme, respectively. Interactions along the 3-fold axis include a water-containing volume (size 207 A3) which has no contact with bulk solvent. It has earlier been shown that a divalent metal ion is essential for catalysis. For the first time, a putative binding site for such a metal ion, in this case Sr2+, is established. The positions of the inhibitor (the non-hydrolysable substrate analogue dUDP) and the metal ion in the complex are consistent with the location of the active centre established for trimeric dUTPase structures, in which subunit interfaces form three surface clefts lined with evolutionary conserved residues. However, a detailed comparison of the active sites of the EIAV and E. coli enzymes reveals some structural differences. The viral enzyme undergoes a small conformational change in the uracil-binding beta-hairpin structure upon dUDP binding not observed in the other known dUTPase structures.

Amino Acid Sequence↗

dUTPase from the retrovirus equine infectious anemia virus: specificity, turnover and inhibition.

The kinetic properties of dUTPase from equine infectious anemia virus (EIAV) were investigated. K(M) (1.1 +/- 0.1 microM) and k(cat) (25 s(-1)) were found to be independent of pH in the neutral pH range. Above pH 8.0, K(M) increases slightly. Below pH 6.0, the enzyme is rapidly deactivated. Detergent was found to enhance activity, leaving K(M) and k(cat) unaffected. Compared to the Escherichia coli dUTPase, the EIAV enzyme is equally potent in hydrolyzing dUTP, but less specific. Inhibition of the viral enzyme by the nucleotides dTTP, dUMP and a synthetic analogue, 2'-deoxyuridine 5'-(alpha,beta-imido)triphosphate, is stronger by one order of magnitude.

Animals↗

Specific derivatization of the active site tyrosine in dUTPase perturbs ligand binding to the active site.

Selective modification of one (of three) tyrosine residue per enzyme monomer leads to inactivation of dUTPase of the retrovirus equine infectious anemia virus (EIAV). The substrate dUMP and the cofactor Mg2+ protect against inactivation and modification, in agreement with the study on E. coli dUTPase (Vertessy et al. (1994) Biochim. Biophys. Acta 1205, 146-150). Amino acid analyses of nitrated dUTPases confirmed Tyr-selectivity of modification. The nitrated residue in E. coli dUTPase was identified as the evolutionary highly conserved Tyr-93. The modifiable residue is shown to be the only Tyr exposed in both E. coli and EIAV dUTPases. As a consequence of Tyr-93 derivatization, the Mg2+-dependent interaction between the substrate-analogue dUDP and E. coli dUTPase becomes impaired as shown by circular dichroism spectroscopy, here presented as a tool for monitoring ligand binding to the active site.

Amino Acid Sequence↗

dUTPase from the retrovirus equine infectious anemia virus: high-level expression in Escherichia coli and purification.

Deoxyuridine 5'-triphosphate nucleotidohydrolase (dUTPase, EC 3.6.1.23) catalyzes the hydrolysis of dUTP to dUMP and pyrophosphate, and plays important roles in nucleotide metabolism and DNA replication. The dUTPase gene of the retrovirus equine infectious anemia virus (EIAV) was cloned and overexpressed in Escherichia coli using the T7 RNA polymerase expression system. The recombinant vector (pET-3a/EDU), constructed by mutagenic PCR, was transformed into E. coli BL21 (DE3) pLysS cells, resulting in expression of EIAV dUTPase at about 40% of the extracted protein. This level of overproduction is very high compared to previous reports on heterologous expression of dUTPases in E. coli. A one-step purification procedure using phosphocellulose chromatography results in a homogeneous preparation of the enzyme in a yield of 45 mg liter-1 of bacterial culture. The purified EIAV dUTPase, run on a sodium dodecyl sulfate-polyacrylamide gel electrophoresis, shows an apparent molecular mass of 15.1 kDa in accordance with the gene structure. The isoelectric point (pI) was determined to 5.6. Gel filtration under nondenaturating conditions gives a retention volume corresponding to a molecular mass of 40.6 kDa, suggesting a trimeric organization of the enzyme. The amino acid composition and amino-terminal sequence of the recombinant dUTPase are in agreement with predictions from the DNA sequence.

Amino Acid Sequence↗

The protein p30, encoded at the gag-pro junction of mouse mammary tumor virus, is a dUTPase fused with a nucleocapsid protein.

A ribosomal frameshift at the gag-pro junction of mouse mammary tumor virus (MMTV) gives rise to the protein p30. The protein consists of two domains, the zinc-finger-containing nucleocapsid (NC) protein portion with 95 residues and a C-terminal extension comprising 154 residues. The C-terminal domain shows similarity in sequence with the enzyme dUTPase from other sources. In this paper, we demonstrate that p30 is a functional dUTPase. Overproduction of the NC protein in Escherichia coli, using the native frameshift sequence at the gag stop codon, caused a detectable expression of dUTPase ascribed to a low frequency of readthrough. By a 1-base insertion, eliminating the gag stop codon and fusing the gag and pro reading frames, a plasmid, pET-3d-NCDU, directing overexpression of p30, was constructed. The overproduced protein, purified by phosphocellulose chromatography, shows both zinc-binding and dUTPase activity. Analytical gel filtration and sequence homology to other dUTPases suggest a trimeric assembly of p30 subunits. MMTV thus possesses two different forms of the nucleocapsid protein, the ordinary NC protein and the p30, having the NC protein connected to a domain of dUTPase.

Amino Acid Sequence↗

Isolation of a new tautomerase monitored by the conversion of D-dopachrome to 5,6-dihydroxyindole.

Two membrane bound enzymes which tautomerize L-dopachrome and are specific for the L-isomer of dopachrome have been defined in melanin forming cells. Another enzyme that tautomerizes D-dopachrome with concomitant decarboxylation to give 5,6-dihydroxyindole (DHI) was found in the cytoplasm of human melanoma cells, human liver and in all of the organs studied in rat. The decolorization of D-dopachrome with the formation of DHI was used in monitoring the isolation of a tautomerase from liver of male rats and therefore the enzyme is provisionally called D-dopachrome tautomerase. The molecular weight of D-dopachrome tautomerase monomer was approximately 12 kD and its N-terminal amino acid sequence was P-F-V-E-L-E-T-N-L-P-A-. The Km for D-dopachrome was 1.5 mM and Vmax 0.5 mmol per min and mg protein.

Amino Acid Sequence↗

dUTPase from herpes simplex virus type 1; purification from infected green monkey kidney (Vero) cells and from an overproducing Escherichia coli strain.

Deoxyuridine 5'-triphosphate nucleotidohydrolase (dUTPase), widespread in nature with a crucial role in the nucleotide metabolism, catalyzes the hydrolysis of dUTP to dUMP and pyrophosphate. The enzyme from herpes simplex virus type 1 (HSV-1 dUTPase) was overproduced in Escherichia coli by using the T7 RNA polymerase expression system. The coding region of the HSV-1 dUTPase gene, UL 50, was positioned downstream of the promoter and the ribosome-binding site of the phage T7 gene 10 on the expression vector pET-3a. The resulting recombinant plasmid, pET-3a/UL50, was transformed into E. coli BL21(DE3)pLysS cells, conferring expression of HSV-1 dUTPase as 2-3% of the soluble protein inducible by isopropyl thiogalactoside. By chromatography on phosphocellulose and Mono S (Pharmacia LKB) columns a nearly homogeneous preparation of the enzyme with a high specific activity (49 mumol per minute per milligram) was obtained. The recombinant protein was compared with the native dUTPase similarly purified from HSV-1-infected Vero cells (African green monkey kidney fibroblasts). The two proteins showed the same mobility on sodium dodecyl sulfate-polyacrylamide gel electrophoresis and the amino-terminal sequences were found to be identical. The molecular mass (39 kDa) and the amino acid composition of the recombinant enzyme are also in accordance with predictions from the DNA sequence. Thus, the overproducing system described here appears suitable for providing HSV-1 dUTPase for detailed studies of molecular properties.

Amino Acid Sequence↗

Isolation of tyrosinase from bovine eyes.

Pigmented tissues from bovine eye were used as a source for isolation of tyrosinase from normal melanocytes. Tyrosinase is highly hydrophobic and the isolation procedure is mainly based on the use of hydrophobic interaction chromatography. The bovine enzyme is, in contrast to the human melanoma tyrosinase, mainly soluble. The predominant part of the ocular enzyme from cow has a molecular weight and isoelectric behavior similar to that of the soluble tyrosinase in the human melanoma cells. The N-terminal amino acid sequence of isolated bovine tyrosinase was determined by automated Edman degradation. The N-terminal amino acid sequence from normal bovine tyrosinase was identical to the sequence of an N-terminal region of mouse melanoma tyrosinase predicted from a c-DNA clone by Kwon et al. (1988). The amino acid sequence of bovine tyrosinase shows homology to that of human tyrosinase (Wittbjer et al., 1989), but three amino acids of the 16 residues determined by us differed. Histidine was the N-terminal amino acid.

Amino Acid Sequence↗

Isolation of soluble tyrosinase from human melanoma cells.

In the human melanoma cell tyrosinase exists in a membraneous and a soluble form. The membraneous enzyme has an N-terminal amino acid sequence identical to that predicted from a human c-DNA clone by Kwon et al.. The soluble form has now been isolated by a technique mainly based on the trypsin resistence of the enzyme and the use of hydrophobic interaction chromatography. The specific dopa oxidase activity of the soluble enzyme was 300 mumol/min x mg protein. On isoelectric focusing the enzyme was found in at least ten bands, pI between 3.8-4.6. The molecular weight was found to be 53,000 D. The N-terminal amino acid sequence was the same as that found in the membrane bound form of the enzyme, i.e. the protein maps at the c-albino locus.

Amino Acid Sequence↗

Isolation of human tyrosinase from cultured melanoma cells.

Tyrosinase was isolated from cultured melanoma cells using a procedure involving solubilization of the enzyme by means of Triton X-100, followed by different types of chromatography and tryptic digestion to make the enzyme soluble even in the absence of detergent. Starting with a membranous material containing 72 mg protein, 0.21 mg tyrosinase was obtained. The recovery of tyrosinase was 36% of the quantity found in the membranous starting material. In order to acquire a completely purified enzyme preparation suitable for amino acid sequence analysis, SDS-PAGE followed by blotting onto a polyvinylidene difluoride membrane was performed as a final step. The apparent molecular weight was found to be 66,000. Determination of the amino acids of the aminoterminal portion by automated Edman degradation showed the following sequence: His-Phe-Pro-Arg-Ala-X-Val-Ser-Ser-Lys-Asn-Leu-Met-Glu-Lys-Glu-X-X-Pro-Pr o-The enzyme purified has an amino acid sequence identical with that of human tyrosinase deduced from c-DNA by Kwon et al. Striking similarities between our amino acid sequence and that predicted by Yamamoto et al. from mouse tyrosinase c-DNA were also observed.

Amino Acid Sequence↗

Analysis of cysteinyldopas, dopa, dopamine, noradrenaline and adrenaline in serum and urine using high-performance liquid chromatography and electrochemical detection.

The catecholic amino acids, dopa, 2-S- and 5-S-cysteinyldopa, and 2,5-S,S-dicysteinyldopa were determined qualitatively in serum from patients with malignant melanoma by reversed-phase high-performance liquid chromatography, using electrochemical detection. In urine the catecholamines dopamine, noradrenaline and adrenaline were also determined qualitatively, as well as the above-mentioned compounds, in a single chromatographic run. The conditions were optimized by changing the pH of the mobile phase and by the addition of methanesulphonic acid. A comparison was made between the performance of four commercial reversed-phase packing materials containing chemically bonded octadecyl groups, using a standard mixture of catecholic amino acids. The influence of ionic strength, pH and amount of methanesulphonic acid on retention was investigated.

Adsorption↗

Intracellular distribution of dopa and 5-S-cysteinyldopa in pigment cells with minimal pigment formation.

The hypothesis that only melanosomal catecholic amino acids contribute to melanin formation was tested by studying adult bovine eyes in which pigment synthesis is considered to be low or absent. Dopa and 5-S-cysteinyldopa were investigated in different cell fractions of the choroid and retinal pigment epithelium of cattle. Most of the dopa and 5-S-cysteinyldopa was found in the cytoplasm and very little in the large granule fraction. The presence of cysteinyldopa in the adult eye is evidence of tyrosinase activity, but the catechol amino acids in the cytoplasm probably do not give rise to melanin formation. It is assumed that they instead are excreted from the cells.

Animals↗

5 years' experience of 5-S-cysteinyldopa in melanoma diagnosis.

Determinations of the urinary excretion of 5-S-cysteinyldopa were performed in 571 patients previously treated by surgery for melanoma or melanoma metastasis. 90% of the 161 patients with metastases showed values exceeding 0.15 mg/24 h, and 9% of the 410 patients without metastases had such values. The increase in 5-S-cysteinyldopa excretion was generally more pronounced in men with metastases than in women, 98% of the men and 77% of the women with metastases showing values exceeding 0.15 mg/24 h. High levels of 5-S-cysteinyldopa are of grave prognostic significan4% died within one month, and only 3% survived for more than a year. In Sweden, determination of 5-S-cysteinyldopa in patients operated on for melanoma gives maximum information in the winter (October--March), when sun exposure does not influence the excretion levels.

Adult↗

Electron spin resonance studies on phaeomelanins.

ESR spectra of synthetic melanins formed from dopa and from 5-S-cysteinyldopa and of melanins isolated from human melanomas were studied. Alkali-soluble melanin synthesized from cysteinyldopa showed a signal similar to that of insoluble melanin synthesized from dopa, but also a simple fine structure. Trichochromes C and F synthesized from 5-S-cysteinyldopa had a broader signal than dopamelanin, and in addition a hyperfine structure that could be explained by the presence of manganous ions. An insoluble eumelanin from a human melanoma with a sulphur content of 5% showed an ESR spectrum consisting of one line like dopamelanin. An alkali-soluble phaeomelanin from a human melanoma with a sulphur content of 10% showed a very broad signal with a hyperfine structure that could be explained by the presence of manganous ions.

Chemical Phenomena↗

The quantitative determination of 5-S-cysteinyldopa and dopa in normal serum and in serum from patients with malignant melanoma by means of high-pressure liquid chromatography.

A method is described for quantitative determination of 5-S-cysteinyldopa and Dopa in serum involving high-pressure liquid chromatographic analysis (HPLC) and electrochemical detection. The chromatographic system allows estimation of injected amounts corresponding to 25 pg of 5-S-cysteinyldopa and Dopa. In normal subjects the mean serum 5-S-cysteinyldopa concentration was 2.8 ng/ml (range 0.4--12 ng/ml) and the mean serum Dopa 6.3 ng/ml (range 4--10 ng/ml). Patients with melanoma metastases showed increased serum concentrations of 5-S-cysteinyldopa.

Chromatography, High Pressure Liquid↗

Trichochromes in the urine of melanoma patients.

The urine of patients with melanoma metastases and increased urinary excretion of 5-S-cysteinyldopa was examined for trichochromes. Five of 16 patients showed urinary excretion of trichochromes B and C. None excreted trichochromes E or F. All patients showing trichochrome excretion had very large amounts of cysteinyldopa in their urine.

Adult↗

5-S-cysteinyldopa and trichochromes in red feathers.

Red cock feathers (Rhode Island) were found to contain dopa and cysteinyldopa, trichochromes B and C, and two unidentified trichochromes. Trichochromes E and F were not found. Previous findings of trichochromes E and F may be explained as artifacts.

Animals↗