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设计一种全共识谷氨酸脱羧酶及其在 GABA 生物合成中的应用。

Design of a Full-Consensus Glutamate Decarboxylase and Its Application to GABA Biosynthesis.

机构信息

Graduate School of Integrated Pharmaceutical and Nutritional Sciences, University of Shizuoka, Shizuoka, Japan.

Numazu Technical Support Center, Industrial Research Institute of Shizuoka Prefecture, Shizuoka, Japan.

出版信息

Chembiochem. 2022 Apr 20;23(8):e202100447. doi: 10.1002/cbic.202100447. Epub 2021 Oct 27.

Abstract

Glutamate decarboxylase (GAD) catalyses the decarboxylation of L-glutamate to gamma-aminobutyric acid (GABA). Improvement of the enzymatic properties of GAD is important for the low-cost synthesis of GABA. In this study, utilizing sequences of enzymes homologous with GAD from lactic acid bacteria, highly mutated GADs were designed using sequence-based protein design methods. Two mutated GADs, FcGAD and AncGAD, generated by full-consensus design and ancestral sequence reconstruction, had more desirable properties than native GADs. With respect to thermal stability, the half-life of the designed GADs was about 10 °C higher than that of native GAD. The productivity of FcGAD was considerably higher than those of known GADs; more than 250 mg/L of purified enzyme could be produced in the E. coli expression system. In a production test using 26.4 g of l-glutamate and 3.0 g of resting cells, 17.2 g of GABA could be prepared within one hour, without purification, in a one-pot synthesis.

摘要

谷氨酸脱羧酶(GAD)催化 L-谷氨酸脱羧生成γ-氨基丁酸(GABA)。提高 GAD 的酶学性质对于 GABA 的低成本合成非常重要。在这项研究中,利用与乳酸菌 GAD 同源的酶序列,我们使用基于序列的蛋白质设计方法设计了高度突变的 GAD。通过全共识设计和祖先序列重建生成的两种突变 GAD,FcGAD 和 AncGAD,具有比天然 GAD 更理想的性质。在热稳定性方面,设计的 GAD 的半衰期比天然 GAD 高约 10°C。FcGAD 的产率明显高于已知的 GAD;在大肠杆菌表达系统中可以生产出超过 250mg/L 的纯化酶。在使用 26.4g L-谷氨酸和 3.0g 休眠细胞的生产测试中,在一锅合成中无需纯化即可在 1 小时内制备 17.2g GABA。

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