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将 S- 苎烯合酶转化为蒎烯或水芹烯合酶揭示了活性位点的可塑性。

Converting S-limonene synthase to pinene or phellandrene synthases reveals the plasticity of the active site.

作者信息

Xu Jinkun, Ai Ying, Wang Jianhui, Xu Jingwei, Zhang Yongkang, Yang Dong

机构信息

Gene Engineering and Biotechnology Beijing Key Laboratory, College of Life Sciences, Beijing Normal University, Beijing, 100875 China.

Gene Engineering and Biotechnology Beijing Key Laboratory, College of Life Sciences, Beijing Normal University, Beijing, 100875 China.

出版信息

Phytochemistry. 2017 May;137:34-41. doi: 10.1016/j.phytochem.2017.02.017. Epub 2017 Feb 16.

DOI:10.1016/j.phytochem.2017.02.017
PMID:28215610
Abstract

S-limonene synthase is a model monoterpene synthase that cyclizes geranyl pyrophosphate (GPP) to form S-limonene. It is a relatively specific enzyme as the majority of its products are composed of limonene. In this study, we converted it to pinene or phellandrene synthases after introducing N345A/L423A/S454A or N345I mutations. Further studies on N345 suggest the polarity of this residue plays a critical role in limonene production by stabilizing the terpinyl cation intermediate. If it is mutated to a non-polar residue, further cyclization or hydride shifts occurs so the carbocation migrates towards the pyrophosphate, leading to the production of pinene or phellandrene. On the other hand, mutant enzymes that still possess a polar residue at this position produce limonene as the major product. N345 is not the only polar residue that may stabilize the terpinyl cation because it is not strictly conserved among limonene synthases across species and there are also several other polar residues in this area. These residues could form a "polar pocket" that may collectively play this stabilizing role. Our study provides important insights into the catalytic mechanism of limonene synthases. Furthermore, it also has wider implications on the evolution of terpene synthases.

摘要

S-柠檬烯合酶是一种典型的单萜合酶,它将香叶基焦磷酸(GPP)环化形成S-柠檬烯。它是一种相对特异性的酶,因为其大部分产物由柠檬烯组成。在本研究中,我们在引入N345A/L423A/S454A或N345I突变后将其转化为蒎烯或水芹烯合酶。对N345的进一步研究表明,该残基的极性通过稳定萜基阳离子中间体在柠檬烯生成中起关键作用。如果它突变为非极性残基,会发生进一步的环化或氢化物转移,从而使碳正离子向焦磷酸迁移,导致蒎烯或水芹烯的生成。另一方面,在该位置仍具有极性残基的突变酶以柠檬烯作为主要产物。N345不是唯一可能稳定萜基阳离子的极性残基,因为它在不同物种的柠檬烯合酶中并不严格保守,并且该区域还有其他几个极性残基。这些残基可能形成一个“极性口袋”,共同发挥这种稳定作用。我们的研究为柠檬烯合酶的催化机制提供了重要见解。此外,它对萜类合酶的进化也具有更广泛的意义。

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