Enzymatic formation of potential anticancer and antiviral inosine analogues.

Experientia Pub Date : 1996-09-15 DOI:10.1007/BF01938874
B Sheid, E Gaetjens, S T Chung, L M Lerner
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引用次数: 2

Abstract

Theoretically, inosine analogues should act as effective inhibitors of tumor cell proliferation and viral replication. To acquire a broad spectrum of new candidate inosine analogues, a rapid, facile, quantitative and stereoselective method for deaminating potential antitumor and antiviral adenine analogues previously synthesized in our laboratory was developed. A novel 5'-adenylic acid deaminase, with relaxed substrate requirements, from Aspergillus species was utilized to deaminate four hexofuranosyladenine nucleosides and five adenine nucleoside dialdehydes to their corresponding inosine analogues. The fastest rates of deamination for the hexofuranosyl nucleosides were for the compounds where the vicinal hydroxyl groups on the sugars are oriented in the erythro configuration. For rapid deamination of the adenine nucleoside dialdehydes, the R configuration at the proximal carbon atom is preferred, while the nature of the group on the distal carbon atom has no significant effect on the rate or extent of deamination.

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潜在的抗癌和抗病毒肌苷类似物的酶促形成。
从理论上讲,肌苷类似物应该作为肿瘤细胞增殖和病毒复制的有效抑制剂。为了获得广谱的新的候选肌苷类似物,我们开发了一种快速、简便、定量和立体选择性的方法来脱胺先前在我们实验室合成的潜在的抗肿瘤和抗病毒腺嘌呤类似物。利用一种新型的5′-腺苷酸脱氨酶,对底物要求较低,从曲霉种中分离出四种六氟脲基腺苷核苷和五种腺嘌呤核苷二醛,将其脱氨为相应的肌苷类似物。六氟脲基核苷的脱氨速率最快的是糖的邻羟基以红细胞构型取向的化合物。对于腺嘌呤核苷二醛的快速脱氨,近端碳原子上的R构型是首选的,而远端碳原子上基团的性质对脱氨的速度和程度没有显著影响。
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