Wagner Drew T, Zeng Jia, Bailey Constance B, Gay Darren C, Yuan Fang, Manion Hannah R, Keatinge-Clay Adrian T
Department of Molecular Biosciences, University of Texas at Austin, Austin, TX 78712, USA.
Department of Chemistry, University of Texas at Austin, Austin, TX 78712, USA.
Structure. 2017 Jul 5;25(7):1045-1055.e2. doi: 10.1016/j.str.2017.05.011. Epub 2017 Jun 15.
In an effort to uncover the structural motifs and biosynthetic logic of the relatively uncharacterized trans-acyltransferase polyketide synthases, we have begun the dissection of the enigmatic dehydrating bimodules common in these enzymatic assembly lines. We report the 1.98 Å resolution structure of a ketoreductase (KR) from the first half of a type A dehydrating bimodule and the 2.22 Å resolution structure of a dehydratase (DH) from the second half of a type B dehydrating bimodule. The KR, from the third module of the bacillaene synthase, and the DH, from the tenth module of the difficidin synthase, possess features not observed in structurally characterized homologs. The DH architecture provides clues for how it catalyzes a unique double dehydration. Correlations between the chemistries proposed for dehydrating bimodules and bioinformatic analysis indicate that type A dehydrating bimodules generally produce an α/β-cis alkene moiety, while type B dehydrating bimodules generally produce an α/β-trans, γ/δ-cis diene moiety.
为了揭示相对未被充分表征的反式酰基转移酶聚酮合酶的结构基序和生物合成逻辑,我们已开始剖析这些酶促装配线中常见的神秘脱水双模块。我们报告了来自A型脱水双模块前半部分的酮还原酶(KR)的1.98 Å分辨率结构以及来自B型脱水双模块后半部分的脱水酶(DH)的2.22 Å分辨率结构。来自杆菌烯合酶第三个模块的KR和来自艰难梭菌素合酶第十个模块的DH具有在结构表征的同源物中未观察到的特征。DH结构为其如何催化独特的双重脱水提供了线索。为脱水双模块提出的化学性质与生物信息学分析之间的相关性表明,A型脱水双模块通常产生α/β-顺式烯烃部分,而B型脱水双模块通常产生α/β-反式、γ/δ-顺式二烯部分。