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游动放线菌属SE50/110中阿卡波糖C(7)-环醇部分的生物合成。初始环醇前体的7-O-磷酸化导致了一条新生物合成途径的提出。

Biosynthesis of the C(7)-cyclitol moiety of acarbose in Actinoplanes species SE50/110. 7-O-phosphorylation of the initial cyclitol precursor leads to proposal of a new biosynthetic pathway.

作者信息

Zhang Chang-Sheng, Stratmann Ansgar, Block Oliver, Brückner Ralph, Podeschwa Michael, Altenbach Hans-Josef, Wehmeier Udo F, Piepersberg Wolfgang

机构信息

Institute of Chemical Microbiology Bergische University, Gauss-Strasse 20, D-42097 Wuppertal, Germany.

出版信息

J Biol Chem. 2002 Jun 21;277(25):22853-62. doi: 10.1074/jbc.M202375200. Epub 2002 Apr 5.

Abstract

We have previously demonstrated that the biosynthesis of the C(7)-cyclitol, called valienol (or valienamine), of the alpha-glucosidase inhibitor acarbose starts from the cyclization of sedo-heptulose 7-phosphate to 2-epi-5-epi-valiolone (Stratmann, A., Mahmud, T., Lee, S., Distler, J., Floss, H. G., and Piepersberg, W. (1999) J. Biol. Chem. 274, 10889-10896). Synthesis of the intermediate 2-epi-5-epi-valiolone is catalyzed by the cyclase AcbC encoded in the biosynthetic (acb) gene cluster of Actinoplanes sp. SE50/110. The acbC gene lies in a possible transcription unit, acbKLMNOC, cluster encompassing putative biosynthetic genes for cyclitol conversion. All genes were heterologously expressed in strains of Streptomyces lividans 66 strains 1326, TK23, and TK64. The AcbK protein was identified as the acarbose 7-kinase, which had been described earlier (Drepper, A., and Pape, H. (1996) J. Antibiot. (Tokyo) 49, 664-668). The multistep conversion of 2-epi-5-epi-valiolone to the final cyclitol moiety was studied by testing enzymatic mechanisms such as dehydration, reduction, epimerization, and phosphorylation. Thus, a phosphotransferase activity was identified modifying 2-epi-5-epi-valiolone by ATP-dependent phosphorylation. This activity could be attributed to the AcbM protein by verifying this activity in S. lividans strain TK64/pCW4123M, expressing His-tagged AcbM. The His-tagged AcbM protein was purified and subsequently characterized as a 2-epi-5-epi-valiolone 7-kinase, presumably catalyzing the first enzyme reaction in the biosynthetic route, leading to an activated form of the intermediate 1-epi-valienol. The AcbK protein could not catalyze the same reaction nor convert any of the other C(7)-cyclitol monomers tested. The 2-epi-5-epi-valiolone 7-phosphate was further converted by the AcbO protein to another isomeric and phosphorylated intermediate, which was likely to be the 2-epimer 5-epi-valiolone 7-phosphate. The products of both enzyme reactions were characterized by mass spectrometric methods. The product of the AcbM-catalyzed reaction, 2-epi-5-epi-valiolone 7-phosphate, was purified on a preparative scale and identified by NMR spectroscopy. A biosynthetic pathway for the pseudodisaccharidic acarviosyl moiety of acarbose is proposed on the basis of these data.

摘要

我们之前已经证明,α-葡萄糖苷酶抑制剂阿卡波糖的C(7)-环醇(称为validol,或valienamine)的生物合成起始于景天庚酮糖7-磷酸环化生成2-表-5-表-validol(Stratmann, A., Mahmud, T., Lee, S., Distler, J., Floss, H. G., and Piepersberg, W. (1999) J. Biol. Chem. 274, 10889 - 10896)。中间体2-表-5-表-validol的合成由游动放线菌SE50/110生物合成(acb)基因簇中编码的环化酶AcbC催化。acbC基因位于一个可能的转录单元acbKLMNOC中,该簇包含环醇转化的假定生物合成基因。所有基因都在淡紫链霉菌66菌株1326、TK23和TK64中进行了异源表达。AcbK蛋白被鉴定为阿卡波糖7-激酶,这在之前已有描述(Drepper, A., and Pape, H. (1996) J. Antibiot. (Tokyo) 49, 664 - 668)。通过测试脱水、还原、差向异构化和磷酸化等酶促机制,研究了2-表-5-表-validol向最终环醇部分的多步转化。因此,鉴定出一种磷酸转移酶活性,通过依赖ATP的磷酸化修饰2-表-5-表-validol。通过在表达His标签的AcbM的淡紫链霉菌菌株TK64/pCW4123M中验证该活性,可将此活性归因于AcbM蛋白。纯化了His标签的AcbM蛋白,随后将其表征为2-表-5-表-validol 7-激酶,推测其催化生物合成途径中的第一个酶促反应,生成中间体1-表-valienol的活化形式。AcbK蛋白不能催化相同反应,也不能转化所测试的任何其他C(7)-环醇单体。2-表-5-表-validol 7-磷酸被AcbO蛋白进一步转化为另一种异构化且磷酸化的中间体,可能是2-差向异构体5-表-validol 7-磷酸。两种酶促反应的产物通过质谱方法进行了表征。AcbM催化反应的产物2-表-5-表-validol 7-磷酸通过制备规模纯化,并通过核磁共振光谱进行了鉴定。基于这些数据,提出了阿卡波糖假二糖基阿卡维糖部分的生物合成途径。

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