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Purification and properties of adenylyl sulphate:ammonia adenylyltransferase from Chlorella catalysing the formation of adenosine 5′-phosphoramidate from adenosine 5′-phosphosulphate and ammonia

机译:小球藻硫酸腺苷酸:氨腺苷酸转移酶的纯化和性质催化由腺苷5′-磷酸和氨形成腺苷5′-氨基磷酸酯

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摘要

Extracts of Chlorella pyrenoidosa, Euglena gracilis var. bacillaris, spinach, barley, Dictyostelium discoideum and Escherichia coli form an unknown compound enzymically from adenosine 5′-phosphosulphate in the presence of ammonia. This unknown compound shares the following properties with adenosine 5′-phosphoramidate: molar proportions of constituent parts (1 adenine:1 ribose:1 phosphate:1 ammonia released at low pH), co-electrophoresis in all buffers tested including borate, formation of AMP at low pH through release of ammonia, mass and i.r. spectra and conversion into 5′-AMP by phosphodiesterase. This unknown compound therefore appears to be identical with adenosine 5′-phosphoramidate. The enzyme that catalyses the formation of adenosine 5′-phosphoramidate from ammonia and adenosine 5′-phosphosulphate was purified 1800-fold (to homogeneity) from Chlorella by using (NH4)2SO4 precipitation and DEAE-cellulose, Sephadex and Reactive Blue 2–agarose chromatography. The purified enzyme shows one band of protein, coincident with activity, at a position corresponding to 60000–65000 molecular weight, on polyacrylamide-gel electrophoresis, and yields three subunits on sodium dodecyl sulphate/polyacrylamide-gel electrophoresis of 26000, 21000 and 17000 molecular weight, consistent with a molecular weight of 64000 for the native enzyme. Isoelectrofocusing yields one band of pI4.2. The pH optimum of the enzyme-catalysed reaction is 8.8. ATP, ADP or adenosine 3′-phosphate 5′-phosphosulphate will not replace adenosine 5′-phosphosulphate, and the apparent Km for the last-mentioned compound is 0.82mm. The apparent Km for ammonia (assuming NH3 to be the active species) is about 10mm. A large variety of primary, secondary and tertiary amines or amides will not replace ammonia. One mol.prop. of adenosine 5′-phosphosulphate reacts with 1 mol.prop. of ammonia to yield 1 mol.prop. each of adenosine 5′-phosphoramidate and sulphate; no AMP is found. The highly purified enzyme does not catalyse any of the known reactions of adenosine 5′-phosphosulphate, including those catalysed by ATP sulphurylase, adenosine 5′-phosphosulphate kinase, adenosine 5′-phosphosulphate sulphotransferase or ADP sulphurylase. Adenosine 5′-phosphoramidate is found in old samples of the ammonium salt of adenosine 5′-phosphosulphate and can be formed non-enzymically if adenosine 5′-phosphosulphate and ammonia are boiled. In the non-enzymic reaction both adenosine 5′-phosphoramidate and AMP are formed. Thus the enzyme forms adenosine 5′-phosphoramidate by selectively speeding up an already favoured reaction.
机译:小球藻小球藻的提取物。细菌,菠菜,大麦,盘基网柄菌和大肠埃希氏菌在氨存在下由5'-磷酸腺苷酶促形成未知化合物。这种未知的化合物与5'-氨基磷酸腺苷具有以下特性:组成部分的摩尔比例(1腺嘌呤:1核糖:1磷酸盐:1在低pH下释放的氨),在所有测试的缓冲液(包括硼酸盐)中进行共电泳,形成AMP在低pH下通过释放氨,质量和ir光谱并通过磷酸二酯酶转化为5'-AMP。因此,该未知化合物似乎与5'-氨基磷酸腺苷相同。通过使用(NH4)2SO4沉淀和DEAE-纤维素,Sephadex和活性蓝2-琼脂糖从小球藻中纯化可催化从氨中生成5'-氨基磷酸腺苷和5'-磷酸腺苷的酶(均一)。层析。纯化的酶在聚丙烯酰胺凝胶电泳上显示一个与活性相符的蛋白带,对应于分子量为60000-65000,并在十二烷基硫酸钠/聚丙烯酰胺凝胶电泳上产生36000个分子,分别为26000、21000和17000分子。重量,与天然酶的分子量64000一致。等电聚焦产生pI4.2的一条带。酶催化反应的最适pH为8.8。 ATP,ADP或3'-磷酸5'-磷酸腺苷不会替代5'-磷酸腺苷,后一种化合物的表观Km为0.82mm。氨的表观Km(假设NH3是活性物质)约为10mm。各种各样的伯,仲和叔胺或酰胺不会代替氨。一摩尔的腺苷5'-磷酸与1 mol丙酸酯反应生成1摩尔的丙醇5′-磷酸氨基腺苷和硫酸盐中的每一个;找不到AMP。高度纯化的酶不催化腺苷5'-磷酸的任何已知反应,包括由ATP硫酸酯酶,腺苷5'-磷酸硫酸酯,腺苷5'-磷酸硫酸酯基转移酶或ADP硫酸酯酶催化的反应。在腺苷5'-磷酸铵盐的旧样品中发现了腺苷5'-氨基磷酸酯,如果将腺苷5'-磷酸和氨煮沸,则可以非酶法形成。在非酶反应中,形成了5'-氨基磷酸腺苷和AMP。因此,该酶通过选择性地加速已经有利的反应而形成腺苷5'-氨基磷酸酯。

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