首页> 外文期刊>Journal of Molecular Biology >Probing the Interactions of early polyketide intermediates with the Actinorhodin ACP from S. coelicolor A3(2).
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Probing the Interactions of early polyketide intermediates with the Actinorhodin ACP from S. coelicolor A3(2).

机译:探究早期聚酮化合物中间体与天蓝色链霉菌A3(2)的放线菌丝蛋白ACP的相互作用。

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摘要

Acyl carrier proteins (ACPs) are essential to both fatty acid synthase (FAS) and polyketide synthase (PKS) biosynthetic pathways, yet relatively little is known about how they function at a molecular level. Seven thiol ester and thiol ether derivatives of the actinorhodin (act) PKS ACP from Streptomyces coelicolor have been prepared and structurally characterised by NMR to gain insight into ACP-intermediate interactions. Holo ACP synthase has been used to prepare early-stage ACP intermediates of polyketide biosynthesis (holo ACP, acetyl ACP, and malonyl ACP) from the respective coenzyme A derivatives. A synthetic route to stabilised thiol ether ACPs was developed and applied to the preparation of stable 3-oxobutyl and 3,5-dioxohexyl ACP as diketide and triketide analogues. No interaction between the protein and the acyl phosphopantetheine moieties of acetyl, malonyl, or 3-oxobutyl ACP was detected. Analysis of (1)H-(15)N heteronuclear single quantum coherence and nuclear Overhauser enhancement spectroscopy spectra for the triketide ACP revealed exchange between a major ('Tri', 85%) and a minor protein conformer in which the polyketide interacts with the protein ('Tri(*)', 15%). Act ACP was also derivatised with butyryl, hexanoyl, and octanoyl groups. The corresponding NMR spectra showed large chemical shift perturbations centred on helices II and III, indicative of acyl chain binding and significant structural rearrangement. Unexpectedly, butyryl act ACP showed almost identical backbone (1)H-(15)N chemical shifts to Tri(*), suggesting comparable structural changes that might provide insight into the structurally uncharacterised polyketide bound form. Furthermore, butyryl ACP itself underwent slow conformational exchange with a second minor conformer (But(*)) with almost identical backbone chemical shifts to octanoyl act ACP. High-resolution NMR structures of these acylated forms revealed that act ACP was able to undergo dramatic conformational changes that exceed those seen in FAS ACPs. When compared to E. coli FAS ACP, the substrate binding pocket of the act PKS ACP has three specific amino acid substitutions (Thr39/Leu45, Ala68/Leu74, and Leu42/Thr48) that alter the size, shape, and location of this cavity. These conformational changes may play a role in protein-protein recognition and assist the binding of bulky polyketide intermediates.
机译:酰基载体蛋白(ACP)对于脂肪酸合酶(FAS)和聚酮化合物合酶(PKS)的生物合成途径都是必不可少的,但对其在分子水平上的功能了解甚少。已经制备了七种来自天蓝色链霉菌的放线菌丝蛋白(act)PKS ACP的七个硫醇酯和硫醇醚衍生物,并通过NMR在结构上进行了表征,以深入了解ACP中间相互作用。 Holo ACP合酶已用于由相应的辅酶A衍生物制备聚酮化合物生物合成的早期ACP中间体(完整ACP,乙酰基ACP和丙二酰ACP)。开发了稳定硫醇醚ACP的合成途径,并将其用于制备稳定的3-二氧丁基和3,5-二氧己基ACP作为二酮和三酮类似物。没有检测到蛋白质与乙酰基,丙二酰基或3-氧代丁基ACP的酰基磷酸泛肽部分之间的相互作用。分析三酮化合物ACP的(1)H-(15)N异核单量子相干和核Overhauser增强光谱,发现主要('Tri',85%)和次要蛋白质构象异构体之间的交换,其中聚酮化合物与蛋白质(“ Tri(*)”,15%)。 ACP法案也被丁酰基,己酰基和辛酰基衍生化。相应的NMR谱图显示了以螺旋II和III为中心的大化学位移扰动,表明酰基链结合和明显的结构重排。出乎意料的是,丁酰基ACP显示出几乎相同的主链(1)H-(15)N化学位移为Tri(*),表明可比较的结构变化可能提供了对结构上未表征的聚酮化合物结合形式的了解。此外,丁酰基ACP本身与第二个较小的构象异构体(But(*))进行了缓慢的构象交换,其主链化学位移几乎完全相同,变为辛酰基ACP。这些酰化形式的高分辨率NMR结构表明,行为ACP能够经历超出FAS ACP中所见的构象变化。与大肠杆菌FAS ACP相比,act PKS ACP的底物结合口袋具有三个特定的氨基酸取代(Thr39 / Leu45,Ala68 / Leu74和Leu42 / Thr48),可改变该腔的大小,形状和位置。这些构象变化可能在蛋白质-蛋白质识别中起作用,并协助庞大的聚酮化合物中间体的结合。

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