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In Vitro Characterization of the Enzymes Involved in TDP-d-Forosamine Biosynthesis in the Spinosyn Pathway of Saccharopolyspora spinosa

机译:糖多孢菌棘的Spinosyn途径中涉及TDP-d-Forosamine生物合成的酶的体外表征。

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摘要

Forosamine (4-dimethylamino)-2,3,4,6-tetradeoxy-α-d-threo-hexopyranose) is a highly deoxygenated sugar component of several important natural products, including the potent yet environmentally benign insecticide spinosyns. To study d-forosamine biosynthesis, the five genes (spnO, N, Q, R, and S) from the spinosyn gene cluster thought to be involved in the conversion of TDP-4-keto-6-deoxy-d-glucose to TDP-d-forosamine were cloned and heterologously expressed, and the corresponding proteins were purified and their activities examined in vitro. Previous work demonstrated that SpnQ functions as a pyridoxamine 5′-monophosphate (PMP)-dependent 3-dehydrase which, in the presence of the cellular reductase pairs ferredoxin/ferredoxin reductase or flavodoxin/flavodoxin reductase, catalyzes C-3 deoxygenation of TDP-4-keto-2,6-dideoxy-d-glucose. It was also established that SpnR functions as a transaminase which converts the SpnQ product, TDP-4-keto-2,3,6-trideoxy-d-glucose, to TDP-4-amino-2,3,4,6-tetradeoxy-d-glucose. The results presented here provide a full account of the characterization of SpnR and SpnQ, and reveal that SpnO and SpnN functions as a 2,3-dehydrase and a 3-ketoreductase, respectively. These two enzymes act sequentially to catalyze C-2 deoxygenation of TDP-4-keto-6-deoxy-d-glucose to form the SpnQ substrate, TDP-4-keto-2,6-dideoxy-d-glucose. Evidence has also been obtained to show that SpnS functions as the 4-dimethyltransferase that converts the SpnR product to TDP-d-forosamine. Thus, the biochemical functions of the five enzymes involved in TDP-d-forosamine formation have now been fully elucidated. The steady-state kinetic parameters for the SpnQ-catalyzed reaction have been determined and the substrate specificities of SpnQ and SpnR have been explored. The implications of this work for natural product glycodiversification and comparative mechanistic analysis of SpnQ and related NDP-sugar 3-dehydrases E1 and ColD are discussed.
机译:甲胺(4-二甲氨基)-2,3,4,6-四脱氧-α-d-苏-己吡喃糖是几种重要天然产物中高度脱氧的糖组分,包括有效但对环境无害的杀虫剂多杀菌素。为了研究d-山梨糖胺的生物合成,来自spinosyn基因簇的5个基因(spnO,N,Q,R和S)被认为与TDP-4-keto-6-脱氧-d-葡萄糖向TDP的转化有关克隆并异源表达-d-forosamine,并纯化相应的蛋白质,并在体外检查其活性。先前的工作表明SpnQ可以作为吡x胺5'-单磷酸酯(PMP)依赖性的3-脱水酶,在细胞还原酶对铁氧还蛋白/铁氧还蛋白还原酶或黄酮毒素/黄酮毒素还原酶的存在下,催化TDP-4的C-3脱氧。 -酮-2,6-二脱氧-d-葡萄糖。还确定SpnR充当转氨酶,将SpnQ产物TDP-4-keto-2,3,6-trideoxy-d-glucose转换为TDP-4-amino-2,3,4,6-tetradeoxy -d-葡萄糖。此处提供的结果充分说明了SpnR和SpnQ的特征,并揭示了SpnO和SpnN分别起2,3-脱水酶和3-酮还原酶的作用。这两种酶依次起作用以催化TDP-4-keto-6-脱氧-d-葡萄糖的C-2脱氧反应,形成SpnQ底物TDP-4-keto-2,6-dideoxy-d-葡萄糖。还已经获得证据表明SpnS充当将SpnR产物转化为TDP-d-forosamine的4-二甲基转移酶。因此,现已完全阐明了参与TDP-d-山梨糖胺形成的五种酶的生化功能。确定了SpnQ催化反应的稳态动力学参数,并研究了SpnQ和SpnR的底物特异性。讨论了这项工作对天然产物糖多样化和SpnQ以及相关NDP糖3-脱水酶E1和ColD的比较机理分析的意义。

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