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倍半萜合酶的生物合成潜力:埃及天仙子前马螺二烯合酶及相关突变体的产物谱

Biosynthetic potential of sesquiterpene synthases: product profiles of Egyptian Henbane premnaspirodiene synthase and related mutants.

作者信息

Koo Hyun Jo, Vickery Christopher R, Xu Yi, Louie Gordon V, O'Maille Paul E, Bowman Marianne, Nartey Charisse M, Burkart Michael D, Noel Joseph P

机构信息

Howard Hughes Medical Institute, The Salk Institute for Biological Studies, Jack H Skirball Center for Chemical Biology and Proteomics, La Jolla, CA, USA.

Department of Chemistry and Biochemistry, University of California, San Diego, La Jolla, CA, USA.

出版信息

J Antibiot (Tokyo). 2016 Jul;69(7):524-33. doi: 10.1038/ja.2016.68. Epub 2016 Jun 22.

Abstract

The plant terpene synthase (TPS) family is responsible for the biosynthesis of a variety of terpenoid natural products possessing diverse biological functions. TPSs catalyze the ionization and, most commonly, rearrangement and cyclization of prenyl diphosphate substrates, forming linear and cyclic hydrocarbons. Moreover, a single TPS often produces several minor products in addition to a dominant product. We characterized the catalytic profiles of Hyoscyamus muticus premnaspirodiene synthase (HPS) and compared it with the profile of a closely related TPS, Nicotiana tabacum 5-epi-aristolochene synthase (TEAS). The profiles of two previously studied HPS and TEAS mutants, each containing nine interconverting mutations, dubbed HPS-M9 and TEAS-M9, were also characterized. All four TPSs were compared under varying temperature and pH conditions. In addition, we solved the X-ray crystal structures of TEAS and a TEAS quadruple mutant complexed with substrate and products to gain insight into the enzymatic features modulating product formation. These informative structures, along with product profiles, provide new insight into plant TPS catalytic promiscuity.

摘要

植物萜类合酶(TPS)家族负责生物合成具有多种生物学功能的各种萜类天然产物。TPS催化异戊二烯基二磷酸底物的电离,并且最常见的是重排和环化,形成直链和环状烃。此外,单个TPS除了主要产物外通常还产生几种次要产物。我们表征了天仙子(Hyoscyamus muticus)前胡螺二烯合酶(HPS)的催化特性,并将其与密切相关的TPS烟草5-表-马兜铃烯合酶(TEAS)的特性进行了比较。还表征了两个先前研究的HPS和TEAS突变体的特性,每个突变体包含九个相互转化的突变,分别称为HPS-M9和TEAS-M9。在不同的温度和pH条件下对所有四种TPS进行了比较。此外,我们解析了TEAS及其与底物和产物复合的四重突变体的X射线晶体结构,以深入了解调节产物形成的酶学特征。这些信息丰富的结构以及产物谱,为植物TPS催化多效性提供了新的见解。

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