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Tylosin polyketide synthase module 3: stereospecificity stereoselectivity and steady-state kinetic analysis of β-processing domains via diffusible synthetic substrates

机译:泰乐菌素聚酮化合物合酶模块3:通过可扩散的合成底物对β-加工域进行立体特异性立体选择性和稳态动力学分析

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摘要

Polyketide synthase (PKS) β-processing domains are responsible for much of the stereochemical complexity of polyketide natural products. Although the importance of β-processing domains has been well noted and significantly explored, key stereochemical details pertaining to cryptic stereochemistry and the impact of remote stereogenic centers have yet to be fully discerned. To uncover the inner workings of ketoreductases (KR) and dehydratases (DH) from the tylosin pathway a didomain composed of TylDH3-KR3 was recombinantly expressed and interrogated with full-length tetraketide substrates to probe the impact of vicinal and distal stereochemistry. In vitro product isolation analysis revealed the products of the cryptic KR as d-alcohols and of the DH as trans-olefins. Steady-state kinetic analysis of the dehydration reaction demonstrated a strict stereochemical tolerance at the β-position as d-configured substrates were processed more than 100 times more efficiently than l-alcohols. Unexpectedly, the k cat/K M values were diminished 14- to 45-fold upon inversion of remote ε- and ζ-stereocenters. This stereochemical discrimination is predicted to be driven by a combination of allylic A1,3 strain that likely disfavors binding of the ε-epimer and a loss of electrostatic interactions with the ζ-epimer. Our results strongly suggest that dehydratases may play a role in refining the stereochemical outcomes of preceding modules through their substrate stereospecificity, honing the configurational purity of the final PKS product.
机译:聚酮化合物合酶(PKS)β加工域是造成聚酮化合物天然产物的大部分立体化学复杂性的原因。尽管β-加工域的重要性已被充分注意到并得到了充分探索,但是与隐秘立体化学有关的关键立体化学细节以及远程立体基因中心的影响尚未得到充分认识。为了从泰乐菌素途径揭示酮还原酶(KR)和脱水酶(DH)的内部功能,重组表达了由TylDH3-KR3组成的双结构域,并用全长四酮化合物底物进行了研究,以探究邻位和远端立体化学的影响。体外产物分离分析表明,隐秘的KR产物为d-醇,而DH的产物为反式烯烃。脱水反应的稳态动力学分析表明,β-构型底物的加工效率比l-醇高100倍,因此在β-位具有严格的立体化学耐受性。出乎意料的是,当偏远的ε和ζ立体中心反转时,k cat / K M值减小了14到45倍。预计这种立体化学歧视是由烯丙基A 1,3 菌株的组合驱动的,该菌株可能不利于ε-epimer的结合以及与ζ-epimer的静电相互作用的丧失。我们的结果有力地表明,脱水酶可能通过其底物的立体专一性改善了先前模块的立体化学结果,从而提高了最终PKS产品的构型纯度。

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