Department of Chemical and Biochemical Engineering, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, People's Republic of China.
College of Food and Biological Engineering, Jimei University, Xiamen, People's Republic of China.
Microb Cell Fact. 2021 Jan 6;20(1):3. doi: 10.1186/s12934-020-01501-2.
Biosynthesis of L-tert-leucine (L-tle), a significant pharmaceutical intermediate, by a cofactor regeneration system friendly and efficiently is a worthful goal all the time. The cofactor regeneration system of leucine dehydrogenase (LeuDH) and glucose dehydrogenase (GDH) has showed great coupling catalytic efficiency in the synthesis of L-tle, however the multi-enzyme complex of GDH and LeuDH has never been constructed successfully.
In this work, a novel fusion enzyme (GDH-R3-LeuDH) for the efficient biosynthesis of L-tle was constructed by the fusion of LeuDH and GDH mediated with a rigid peptide linker. Compared with the free enzymes, both the environmental tolerance and thermal stability of GDH-R3-LeuDH had a great improved since the fusion structure. The fusion structure also accelerated the cofactor regeneration rate and maintained the enzyme activity, so the productivity and yield of L-tle by GDH-R3-LeuDH was all enhanced by twofold. Finally, the space-time yield of L-tle catalyzing by GDH-R3-LeuDH whole cells could achieve 2136 g/L/day in a 200 mL scale system under the optimal catalysis conditions (pH 9.0, 30 °C, 0.4 mM of NAD and 500 mM of a substrate including trimethylpyruvic acid and glucose).
It is the first report about the fusion of GDH and LeuDH as the multi-enzyme complex to synthesize L-tle and reach the highest space-time yield up to now. These results demonstrated the great potential of the GDH-R3-LeuDH fusion enzyme for the efficient biosynthesis of L-tle.
通过一个对辅因子再生系统友好且高效的方法来生物合成 L-叔亮氨酸(L-tle),一种重要的医药中间体,一直是一个有价值的目标。亮氨酸脱氢酶(LeuDH)和葡萄糖脱氢酶(GDH)的辅因子再生系统在 L-tle 的合成中显示出了很大的偶联催化效率,然而 GDH 和 LeuDH 的多酶复合物从未成功构建过。
在这项工作中,通过刚性肽接头介导,将 LeuDH 和 GDH 融合构建了一种新型融合酶(GDH-R3-LeuDH),用于高效生物合成 L-tle。与游离酶相比,由于融合结构,GDH-R3-LeuDH 的环境耐受性和热稳定性都有了很大的提高。融合结构还加速了辅因子的再生速率并保持了酶的活性,因此 GDH-R3-LeuDH 的 L-tle 生产力和产率都提高了两倍。最后,在最优催化条件(pH 9.0、30°C、0.4 mM NAD 和 500 mM 包括三甲基丙酮酸和葡萄糖在内的底物)下,在 200 mL 规模系统中,GDH-R3-LeuDH 全细胞催化 L-tle 的时空产率可达到 2136 g/L/天。
这是首次报道将 GDH 和 LeuDH 融合作为多酶复合物来合成 L-tle,并达到迄今为止的最高时空产率。这些结果表明 GDH-R3-LeuDH 融合酶在 L-tle 的高效生物合成中具有巨大的潜力。