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参与吲哚咔唑AT2433生物合成途径中TDP-氨基脱氧戊糖早期合成的酶的表征

Characterization of Early Enzymes Involved in TDP-Aminodideoxypentose Biosynthesis en Route to Indolocarbazole AT2433.

作者信息

Peltier-Pain Pauline, Singh Shanteri, Thorson Jon S

机构信息

Pharmaceutical Sciences Division, University of Wisconsin-Madison, 777 Highland Avenue, Madison, WI, 53705, USA.

Glycom A/S, Denmark.

出版信息

Chembiochem. 2015 Oct 12;16(15):2141-6. doi: 10.1002/cbic.201500365. Epub 2015 Sep 18.

Abstract

The characterization of TDP-α-D-glucose dehydrogenase (AtmS8), TDP-α-D-glucuronic acid decarboxylase (AtmS9), and TDP-4-keto-α-D-xylose 2,3-dehydratase (AtmS14), involved in Actinomadura melliaura AT2433 aminodideoxypentose biosynthesis, is reported. This study provides the first biochemical evidence that both deoxypentose and deoxyhexose biosynthetic pathways share common strategies for sugar 2,3-dehydration/reduction and implicates the sugar nucleotide base specificity of AtmS14 as a potential mechanism for sugar nucleotide commitment to secondary metabolism. In addition, a re-evaluation of the AtmS9 homologue involved in calicheamicin aminodeoxypentose biosynthesis (CalS9) reveals that CalS9 catalyzes UDP-4-keto-α-D-xylose as the predominant product, rather than UDP-α-D-xylose as previously reported. Cumulatively, this work provides additional fundamental insights regarding the biosynthesis of novel pentoses attached to complex bacterial secondary metabolites.

摘要

本文报道了参与马杜拉放线菌AT2433氨基脱氧戊糖生物合成的TDP-α-D-葡萄糖脱氢酶(AtmS8)、TDP-α-D-葡萄糖醛酸脱羧酶(AtmS9)和TDP-4-酮-α-D-木糖2,3-脱水酶(AtmS14)的特性。本研究提供了首个生化证据,表明脱氧戊糖和脱氧己糖生物合成途径在糖2,3-脱水/还原方面具有共同策略,并暗示AtmS14的糖核苷酸碱基特异性是糖核苷酸参与次级代谢的潜在机制。此外,对参与刺孢霉素氨基脱氧戊糖生物合成的AtmS9同源物(CalS9)的重新评估表明,CalS9催化UDP-4-酮-α-D-木糖作为主要产物,而非先前报道的UDP-α-D-木糖。总体而言,这项工作为与复杂细菌次级代谢产物相连的新型戊糖的生物合成提供了更多基本见解。

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