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首页> 外文期刊>ACS Chemical Biology >Polyketide Intermediate Mimics as Probes for Revealing Cryptic Stereochemistry of Ketoreductase Domains
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Polyketide Intermediate Mimics as Probes for Revealing Cryptic Stereochemistry of Ketoreductase Domains

机译:聚酮中间体模拟物作为揭示酮还原酶域的隐秘立体化学的探针。

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Among natural product families, polyketides have shown the most promise for combinatorial biosynthesis of natural product-like libraries. Though recent research in the area has provided many mechanistic revelations, a basic-level understanding of kinetic and substrate tolerability is still needed before the full potential of combinatorial biosynthesis can be realized. We have developed a novel set of chemical probes for the study of ketoreductase domains of polyketide synthases. This chemical tool-based approach was validated using the ketoreductase of pikromycin module 2 (PikKR2) as a model system. Triketide substrate mimics 12 and 13 were designed to increase stability (incorporating a nonhydrolyzable thioether linkage) and minimize nonessential functionality (truncating the phosphopantetheinyl arm). PikKR2 reduction product identities as well as steady-state kinetic parameters were determined by a combination of LC-MS/MS analysis of synthetic standards and a NADPH consumption assay. The d-hydroxyl product is consistent with bioinformatic analysis and results from a complementary biochemical and molecular biological approach. When compared to widely employed substrates in previous studies, diketide 63 and trans-decalone 64, substrates 12 and 13 showed 210 fold lower K-M values (2.4 +/- 0.8 and 7.8 +/- 2.7 mM, respectively), indicating molecular recognition of intermediate-like substrates. Due to an abundance of the nonreducable enol-tautomer, the kcat values were attenuated by as much as 15336 fold relative to known substrates. This study reveals the high stereoselectivity of PikKR2 in the face of gross substrate permutation, highlighting the utility of a chemical probe-based approach in the study of polyketide ketoreductases.
机译:在天然产物家族中,聚酮化合物已显示出对类似天然产物的文库进行组合生物合成的最大希望。尽管该领域的最新研究提供了许多机理方面的启示,但在实现组合生物合成的全部潜力之前,仍需要对动力学和底物耐受性有基本的了解。我们已经开发出一套新的化学探针,用于研究聚酮化合物合酶的酮还原酶结构域。使用吡咯霉素模块2(PikKR2)的酮还原酶作为模型系统,验证了这种基于化学工具的方法。三酮化合物底物模拟物12和13被设计为增加稳定性(结合不可水解的硫醚键)并最小化不必要的功能(截短磷酸泛肽基臂)。通过合成标准品的LC-MS / MS分析和NADPH消耗测定法相结合,确定PikKR2还原产物的身份以及稳态动力学参数。 d-羟基产物与生物信息学分析一致,并且是互补的生化和分子生物学方法的结果。当与先前研究中广泛使用的底物(双酮化合物63和反癸烯酮64)相比时,底物12和13的KM值降低了210倍(分别为2.4 +/- 0.8和7.8 +/- 2.7 mM),表明对中间体的分子识别类底物。由于大量的不可还原的烯醇互变异构体,kcat值相对于已知的底物衰减了多达15336倍。这项研究揭示了面对总的底物置换,PikKR2具有很高的立体选择性,突出了基于化学探针的方法在聚酮化合物酮还原酶研究中的实用性。

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