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41.
Rebecca S LaRue Stefán R Jónsson Kevin AT Silverstein Mathieu Lajoie Denis Bertrand Nadia El-Mabrouk Isidro Hötzel Valgerdur Andrésdóttir Timothy PL Smith Reuben S Harris 《BMC molecular biology》2008,9(1):104
Background
APOBEC3 (A3) proteins deaminate DNA cytosines and block the replication of retroviruses and retrotransposons. Each A3 gene encodes a protein with one or two conserved zinc-coordinating motifs (Z1, Z2 or Z3). The presence of one A3 gene in mice (Z2–Z3) and seven in humans, A3A-H (Z1a, Z2a-Z1b, Z2b, Z2c-Z2d, Z2e-Z2f, Z2g-Z1c, Z3), suggests extraordinary evolutionary flexibility. To gain insights into the mechanism and timing of A3 gene expansion and into the functional modularity of these genes, we analyzed the genomic sequences, expressed cDNAs and activities of the full A3 repertoire of three artiodactyl lineages: sheep, cattle and pigs. 相似文献42.
Barsotti C Pesi R Giannecchini M Ipata PL 《The Journal of biological chemistry》2005,280(14):13465-13469
In this paper, we show that in vitro xanthosine does not enter any of the pathways known to salvage the other three main natural purine nucleosides: guanosine; inosine; and adenosine. In rat brain extracts and in intact LoVo cells, xanthosine is salvaged to XMP via the phosphotransferase activity of cytosolic 5'-nucleotidase. IMP is the preferred phosphate donor (IMP + xanthosine --> XMP + inosine). XMP is not further phosphorylated. However, in the presence of glutamine, it is readily converted to guanyl compounds. Thus, phosphorylation of xanthosine by cytosolic 5'-nucleotidase circumvents the activity of IMP dehydrogenase, a rate-limiting enzyme, catalyzing the NAD(+)-dependent conversion of IMP to XMP at the branch point of de novo nucleotide synthesis, thus leading to the generation of guanine nucleotides. Mycophenolic acid, an inhibitor of IMP dehydrogenase, inhibits the guanyl compound synthesis via the IMP dehydrogenase pathway but has no effect on the cytosolic 5'-nucleotidase pathway of guanine nucleotides synthesis. We propose that the latter pathway might contribute to the reversal of the in vitro antiproliferative effect exerted by IMP dehydrogenase inhibitors routinely seen with repletion of the guanine nucleotide pools. 相似文献
43.
Francesco Sgarrella Luciano Frassetto Simone Allegrini Marcella Camici Maria Caterina Carta Paolo Fadda Maria Grazia Tozzi Piero Luigi Ipata 《Biochimica et Biophysica Acta (BBA)/General Subjects》2007
Adenosine phosphorylase, a purine nucleoside phosphorylase endowed with high specificity for adenine nucleosides, was purified 117-fold from vegetative forms of Bacillus cereus. The purification procedure included ammonium sulphate fractionation, pH 4 treatment, ion exchange chromatography on DEAE-Sephacel, gel filtration on Sephacryl S-300 HR and affinity chromatography on N6-adenosyl agarose. The enzyme shows a good stability to both temperature and pH. It appears to be a homohexamer of 164 ± 5 kDa. Kinetic characterization confirmed the specificity of this phosphorylase for 6-aminopurine nucleosides. Adenosine was the preferred substrate for nucleoside phosphorolysis (kcat/Km 2.1 × 106 s− 1 M− 1), followed by 2′-deoxyadenosine (kcat/Km 4.2 × 105 s− 1 M− 1). Apparently, the low specificity of adenosine phosphorylase towards 6-oxopurine nucleosides is due to a slow catalytic rate rather than to poor substrate binding. 相似文献
44.
Piero L. Ipata Rossana Pesi 《Metabolomics : Official journal of the Metabolomic Society》2018,14(4):42
Background
A substrate cycle is a metabolic transformation in which a substrate A is phosphorylated to A?P at the expense of ATP (or another “high energy” compound), and A?P is converted back to A by a nucleotidase or a phosphatase. Many biochemists resisted the idea of such an ATP waste. Why a non-phosphorylated metabolite should be converted into a phosphorylated form, and converted back to its non-phosphorylated form through a “futile cycle”?Aim of review
In this Review we aim at presenting our present knowledge on the biochemical features underlying the interrelation between the muscle purine nucleotide cycle and the oxypurine cycle, and on the metabolic responses of the two cycles to increasing intensities of muscle contraction.Key scientific concepts of review
Nowadays it is widely accepted that the substrate cycles regulate many vital functions depending on the expense of large amounts of ATP, including skeletal muscle contraction, so that the expense of some extra ATP and “high energy” compounds, such as GTP and PRPP via substrate cycles, is not surprising. The Review emphasizes the strict metabolic interrelationship between the purine nucleotide cycle and the oxipurine cycle.45.
A very potent anticholinesterase compound, 7-(diethoxyphosphinyloxy)-N-methylquinolinium fluorosulfate, has been used to determine the normality of acetylcholinesterase solutions. The inhibitor reacts rapidly and completely with acetylcholinesterase. The bimolecular rate constant is 2.5 × 108m?1 min?1 and the equilibrium constant is about 106. The reaction produces an inactive diethylphosphoryl enzyme in which the active serine is phosphorylated. The reaction produces the highly fluorescent 1-methyl-7-hydroxyquinolinium dipolar ion as a leaving group. The inhibited enzyme is quite stable and hydrolyzes to produce active enzyme only at the rate of 0.04%/min. The inhibitor was used in two ways for measuring the normality of acetylcholinesterase solutions: (1) The very fast reaction of the inhibitor with cholinesterase makes it convenient to determine the normality of enzyme solutions by measuring the decrease in enzyme activity caused by the addition of an accurately known quantity of the inhibitor. (2) The highly fluorescent nature of the leaving group makes it possible to measure the low concentration that is produced by the reaction of excess inhibitor with the enzyme. The two methods yielded activities per site of 6.9 × 105 min?1 and 7.3 × 105 min?1 using enzyme normalities of 1–2 × 10?8m and 1–5 × 10?m, respectively, using a commercial 11 S enzyme preparation from electric eel and acetylthiocholine as the enzyme substrate. 相似文献
46.
Maria Grazia Tozzi Roberta Catalani Pier Luigi Ipata Umberto Mura 《Analytical biochemistry》1982,123(2):265-269
Published assays for phosphopentomutase activity are based on acid lability differences between ribose 1-phosphate and ribose 5-phosphate. The present work describes a new method in which the isomerization of ribose 5-phosphate to ribose 1-phosphate is followed spectrophotometrically at 265 nm by coupling it with the following two-stage enzymatic conversion: ribose 1-phosphate + adenine ? phosphate + adenosine (adenosine phosphorylase); adenosine + H2O → inosine + NH3 (adenosine deaminase). The method has been used to show some properties of Escherichia coli phosphopentomutase. 相似文献
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48.
本文报告用转基因细胞B43分泌的乙型肝炎病毒表面抗原主蛋白经纯化制成的87-4批重组疫苗进行临床接种观察的结果,同时用8723-1批血源疫苗作对照。疫苗接种采用0、1、2月各接种1针的方案。重组疫苗共接种111名8~13岁儿童,分为20μg、10μg及5μg 3组,血源疫苗分为20μg、10μg 2组。所有儿童接种前检查乙型肝炎病毒表面抗原、抗体及核心抗体均阴性.20μg组1针后1个月,重组疫苗阳转率60.5%,血源疫苗为31%;2针后1个月,两种疫苗的阳转率分别为100%和72.4%;血源疫苗3针后1个月阳转率也仅79.3%。3针后1个月两种疫苗的抗体几何平均滴度(GMT)分别为492.7和207.4mIU。但重组疫苗6个月后血清抗体的GMT为628mIU。10μg组1针后1个月的阳转率重组疫苗为21.7%,血源疫苗为20.9%;2针后1个月分别为87%及62.8%;3针后1个月分别为100%及81.4%。抗体GMT分别为163.7和129.6mIU.5μg组的重组疫苗免疫后6个月100%阳转,其GMT为56mIU。结论认为无论从阳转率或几何平均滴度分析判断,重组疫苗均优于血源疫苗。 相似文献
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