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二氢大豆苷元还原酶的P212A突变体在重组大肠杆菌全细胞反应体系中增强了(S)-雌马酚的产生及对映体选择性。

P212A Mutant of Dihydrodaidzein Reductase Enhances (S)-Equol Production and Enantioselectivity in a Recombinant Escherichia coli Whole-Cell Reaction System.

作者信息

Lee Pyung-Gang, Kim Joonwon, Kim Eun-Jung, Jung EunOk, Pandey Bishnu Prasad, Kim Byung-Gee

机构信息

Department of Chemical and Biological Engineering, Seoul National University, Seoul, Republic of Korea Institute of Molecular Biology and Genetics, Seoul National University, Seoul, Republic of Korea.

Institute of Molecular Biology and Genetics, Seoul National University, Seoul, Republic of Korea.

出版信息

Appl Environ Microbiol. 2016 Jan 22;82(7):1992-2002. doi: 10.1128/AEM.03584-15.

Abstract

(S)-Equol, a gut bacterial isoflavone derivative, has drawn great attention because of its potent use for relieving female postmenopausal symptoms and preventing prostate cancer. Previous studies have reported on the dietary isoflavone metabolism of several human gut bacteria and the involved enzymes for conversion of daidzein to (S)-equol. However, the anaerobic growth conditions required by the gut bacteria and the low productivity and yield of (S)-equol limit its efficient production using only natural gut bacteria. In this study, the low (S)-equol biosynthesis of gut microorganisms was overcome by cloning the four enzymes involved in the biosynthesis from Slackia isoflavoniconvertens into Escherichia coli BL21(DE3). The reaction conditions were optimized for (S)-equol production from the recombinant strain, and this recombinant system enabled the efficient conversion of 200 μM and 1 mM daidzein to (S)-equol under aerobic conditions, achieving yields of 95% and 85%, respectively. Since the biosynthesis of trans-tetrahydrodaidzein was found to be a rate-determining step for (S)-equol production, dihydrodaidzein reductase (DHDR) was subjected to rational site-directed mutagenesis. The introduction of the DHDR P212A mutation increased the (S)-equol productivity from 59.0 mg/liter/h to 69.8 mg/liter/h in the whole-cell reaction. The P212A mutation caused an increase in the (S)-dihydrodaidzein enantioselectivity by decreasing the overall activity of DHDR, resulting in undetectable activity for (R)-dihydrodaidzein, such that a combination of the DHDR P212A mutant with dihydrodaidzein racemase enabled the production of (3S,4R)-tetrahydrodaidzein with an enantioselectivity of >99%.

摘要

(S)-雌马酚是一种肠道细菌异黄酮衍生物,因其在缓解女性绝经后症状和预防前列腺癌方面的潜在用途而备受关注。此前的研究报道了几种人体肠道细菌的膳食异黄酮代谢以及将大豆苷元转化为(S)-雌马酚所涉及的酶。然而,肠道细菌所需的厌氧生长条件以及(S)-雌马酚的低生产率和产量限制了仅使用天然肠道细菌进行其高效生产。在本研究中,通过将来自产异黄酮Slackia菌中参与生物合成的四种酶克隆到大肠杆菌BL21(DE3)中,克服了肠道微生物(S)-雌马酚生物合成能力低的问题。对重组菌株生产(S)-雌马酚的反应条件进行了优化,该重组系统能够在有氧条件下将200 μM和1 mM的大豆苷元高效转化为(S)-雌马酚,产率分别达到95%和85%。由于发现反式四氢大豆苷元的生物合成是(S)-雌马酚生产的限速步骤,因此对二氢大豆苷元还原酶(DHDR)进行了合理的定点诱变。在全细胞反应中,引入DHDR P212A突变使(S)-雌马酚的生产率从59.0毫克/升/小时提高到69.8毫克/升/小时。P212A突变通过降低DHDR的总体活性提高了(S)-二氢大豆苷元的对映体选择性,导致对(R)-二氢大豆苷元无活性,因此,将DHDR P212A突变体与二氢大豆苷元消旋酶结合能够生产对映体选择性>99%的(3S,4R)-四氢大豆苷元。

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