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从模块化聚酮合酶的两种大环形成硫酯酶的晶体结构洞察通道结构和底物特异性。

Insights into channel architecture and substrate specificity from crystal structures of two macrocycle-forming thioesterases of modular polyketide synthases.

作者信息

Tsai Shiou-Chuan, Lu Hongxiang, Cane David E, Khosla Chaitan, Stroud Robert M

机构信息

Department of Chemical Engineering, Stanford University, Stanford, California 94305-5025, USA.

出版信息

Biochemistry. 2002 Oct 22;41(42):12598-606. doi: 10.1021/bi0260177.

Abstract

Modular polyketide synthases (PKSs) synthesize the polyketide cores of pharmacologically important natural products such as erythromycin and picromycin. Understanding PKSs at high resolution could present new opportunities for chemoenzymatic synthesis of complex molecules. The crystal structures of macrocycle-forming thioesterase (TE) domains from the picromycin synthase (PICS) and 6-deoxyerythronolide B synthase (DEBS) were determined to 1.8-3.0 A with an R(crys) of 19.2-24.4%, including three structures of PICS TE (crystallized at pH 7.6, 8.0, and 8.4) and a second crystal form of DEBS TE. As predicted by the previous work on DEBS TE [Tsai, S. C., et al. (2001) Proc. Natl. Acad. Sci. U.S.A. 98, 14808-14813], PICS TE contains an open substrate channel and a hydrophobic dimer interface. Notwithstanding their similarity, the dimer interfaces and substrate channels of DEBS TE and PICS TE reveal key differences. The structural basis for the divergent substrate specificities of DEBS TE and PICS TE is analyzed. The size of the substrate channel increases with increasing pH, presumably due to electrostatic repulsion in the channel at elevated pH. Together, these structures support previous predictions that macrocycle-forming thioesterases from PKSs share the same protein fold, an open substrate channel, a similar catalytic mechanism, and a hydrophobic dimer interface. They also provide a basis for the design of enzymes capable of catalyzing regioselective macrocyclization of natural or synthetic substrates. A series of high-resolution snapshots of a protein channel at different pHs is presented alongside analysis of channel residues, which could help in the redesign of the protein channel architecture.

摘要

模块化聚酮合酶(PKSs)可合成具有重要药理活性的天然产物(如红霉素和苦霉素)的聚酮核心结构。高分辨率解析PKSs可为复杂分子的化学酶法合成带来新机遇。测定了苦霉素合酶(PICS)和6-脱氧红霉内酯B合酶(DEBS)中形成大环的硫酯酶(TE)结构域的晶体结构,分辨率达到1.8 - 3.0 Å,R(crys)为19.2 - 24.4%,包括PICS TE的三种结构(在pH 7.6、8.0和8.4条件下结晶)以及DEBS TE的第二种晶体形式。正如之前对DEBS TE的研究预测的那样[蔡,S.C.等人(2001年)美国国家科学院院刊98,14808 - 14813],PICS TE含有一个开放的底物通道和一个疏水二聚体界面。尽管它们相似,但DEBS TE和PICS TE的二聚体界面和底物通道显示出关键差异。分析了DEBS TE和PICS TE不同底物特异性的结构基础。底物通道的大小随pH升高而增大,推测是由于在较高pH下通道内的静电排斥作用。总之,这些结构支持了之前的预测,即PKSs中形成大环的硫酯酶具有相同的蛋白质折叠、开放的底物通道、相似的催化机制和疏水二聚体界面。它们还为设计能够催化天然或合成底物区域选择性大环化的酶提供了基础。展示了蛋白质通道在不同pH下的一系列高分辨率快照,并对通道残基进行了分析,这有助于重新设计蛋白质通道结构。

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