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底物和碳正离子中间类似物与aristolochene 合酶结合的机制见解。

Mechanistic insights from the binding of substrate and carbocation intermediate analogues to aristolochene synthase.

机构信息

Roy and Diana Vagelos Laboratories, Department of Chemistry, University of Pennsylvania, Philadelphia, PA 19104-6323, USA.

出版信息

Biochemistry. 2013 Aug 13;52(32):5441-53. doi: 10.1021/bi400691v. Epub 2013 Aug 1.

Abstract

Aristolochene synthase, a metal-dependent sesquiterpene cyclase from Aspergillus terreus, catalyzes the ionization-dependent cyclization of farnesyl diphosphate (FPP) to form the bicyclic eremophilane (+)-aristolochene with perfect structural and stereochemical precision. Here, we report the X-ray crystal structure of aristolochene synthase complexed with three Mg(2+) ions and the unreactive substrate analogue farnesyl-S-thiolodiphosphate (FSPP), showing that the substrate diphosphate group is anchored by metal coordination and hydrogen bond interactions identical to those previously observed in the complex with three Mg(2+) ions and inorganic pyrophosphate (PPi). Moreover, the binding conformation of FSPP directly mimics that expected for productively bound FPP, with the exception of the precise alignment of the C-S bond with regard to the C10-C11 π system that would be required for C1-C10 bond formation in the first step of catalysis. We also report crystal structures of aristolochene synthase complexed with Mg(2+)3-PPi and ammonium or iminium analogues of bicyclic carbocation intermediates proposed for the natural cyclization cascade. Various binding orientations are observed for these bicyclic analogues, and these orientations appear to be driven by favorable electrostatic interactions between the positively charged ammonium group of the analogue and the negatively charged PPi anion. Surprisingly, the active site is sufficiently flexible to accommodate analogues with partially or completely incorrect stereochemistry. Although this permissiveness in binding is unanticipated, based on the stereochemical precision of catalysis that leads exclusively to the (+)-aristolochene stereoisomer, it suggests the ability of the active site to enable controlled reorientation of intermediates during the cyclization cascade. Taken together, these structures illuminate important aspects of the catalytic mechanism.

摘要

曲松烯合酶是一种来自土曲霉的金属依赖性倍半萜环化酶,能够催化法呢基二磷酸(FPP)的依赖于离子化的环化,形成具有完美结构和立体化学精确性的双环埃雷莫芬烷(+)-曲松烯。在这里,我们报告了与三个 Mg2+离子和非反应性底物类似物法呢基-S-硫代二磷酸酯(FSPP)结合的曲松烯合酶的 X 射线晶体结构,表明底物二磷酸酯基团通过金属配位和氢键相互作用与之前观察到的与三个 Mg2+离子和无机焦磷酸酯(PPi)结合的复合物中的相同。此外,FSPP 的结合构象直接模拟了预期的产物结合 FPP 的构象,除了 C-S 键与 C10-C11π 系统的精确对准之外,这对于催化的第一步中的 C1-C10 键形成是必需的。我们还报告了与 Mg2+3-PPi 和铵或亚铵类似物结合的曲松烯合酶的晶体结构,这些类似物被提议用于天然环化级联中的双环碳正离子中间物。观察到这些双环类似物的各种结合取向,并且这些取向似乎是由类似物的带正电荷的铵基团与带负电荷的 PPi 阴离子之间的有利静电相互作用驱动的。令人惊讶的是,活性位点具有足够的灵活性,可以容纳部分或完全不正确立体化学的类似物。尽管这种结合的宽容度是出乎意料的,但基于催化的立体化学精度,这导致仅产生(+)-曲松烯立体异构体,它表明活性位点能够在环化级联过程中使中间体进行受控重定向的能力。总之,这些结构阐明了催化机制的重要方面。

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