Murrell Jeffrey M, Liu Wen, Shen Ben
Department of Chemistry, University of California, Davis, California 95616, USA.
J Nat Prod. 2004 Feb;67(2):206-13. doi: 10.1021/np0340403.
Sequence analysis of the biosynthetic gene cluster for the enediyne antitumor antibiotic C-1027 from Streptomyces globisporus has previously suggested that the sgcA1 gene encodes a alpha-d-glucopyranosyl-1-phosphate thymidylyltransferase (Glc-1-P-TT) catalyzing the first step in the biosynthesis of the 4-deoxy-4-(dimethylamino)-5,5-dimethyl-d-ribopyranose moiety by activating alpha-d-glucopyranosyl-1-phosphate (Glc-1-P) into deoxythymidine diphosphate-alpha-d-glucose (dTDP-Glc). Here we report the overexpression of sgcA1 in E. coli, purification of the overproduced SgcA1 to homogenetity, biochemical and kinetic characterization of the purified SgcA1 as a Glc-1-P-TT, and yield improvement for C-1027 production by overexpression of sgcA1 and its flanking gene in S. globisporus. These findings provide biochemical evidence supporting the genetics-based hypothesis for C-1027 biosynthesis, set the stage for further investigation of the deoxysugar biosynthetic pathway, and demonstrate the utility of sugar biosynthesis genes in natural product yield improvement via combinatorial biosynthesis methods. In contrast to the homotetrameric quaternary structure known for Glc-1-P-TT enzymes from primary metabolic pathways, Glc-1-P-TT enzymes such as SgcA1 from secondary metabolic pathways are monomeric in solution. Sequence differences between the two subclasses of Glc-1-P-TT enzymes were noted. The monomeric structural feature of the latter enzymes could be exploited in engineering Glc-1-P-TT enzymes with broad substrate specificity for structural diversity via the glycorandomization strategy.
先前对来自球形链霉菌的烯二炔类抗肿瘤抗生素C-1027生物合成基因簇的序列分析表明,sgcA1基因编码一种α-D-吡喃葡萄糖基-1-磷酸胸苷酰转移酶(Glc-1-P-TT),它通过将α-D-吡喃葡萄糖基-1-磷酸(Glc-1-P)活化为脱氧胸苷二磷酸-α-D-葡萄糖(dTDP-Glc),催化4-脱氧-4-(二甲氨基)-5,5-二甲基-D-核糖吡喃糖部分生物合成的第一步。在此,我们报道了sgcA1在大肠杆菌中的过表达、将过量产生的SgcA1纯化至均一性、对纯化后的作为Glc-1-P-TT的SgcA1进行生化和动力学表征,以及通过在球形链霉菌中过表达sgcA1及其侧翼基因来提高C-1027的产量。这些发现提供了生化证据,支持了基于遗传学的C-1027生物合成假说,为进一步研究脱氧糖生物合成途径奠定了基础,并证明了糖生物合成基因在通过组合生物合成方法提高天然产物产量方面的实用性。与来自初级代谢途径的Glc-1-P-TT酶已知的同四聚体四级结构不同,来自次级代谢途径的Glc-1-P-TT酶如SgcA1在溶液中是单体。注意到了这两类Glc-1-P-TT酶之间的序列差异。后一类酶的单体结构特征可通过糖随机化策略用于工程改造具有广泛底物特异性以实现结构多样性的Glc-1-P-TT酶。