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One-Step Biosynthesis of α-Keto-γ-Methylthiobutyric Acid from L-Methionine by an Escherichia coli Whole-Cell Biocatalyst Expressing an Engineered L-Amino Acid Deaminase from Proteus vulgaris

机译:表达来自寻常变形杆菌的工程改造的L-氨基酸脱氨酶的大肠杆菌全细胞生物催化剂从L-蛋氨酸一步一步合成α-酮基-γ-甲硫基丁酸

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摘要

α-Keto-γ-methylthiobutyric acid (KMTB), a keto derivative of l-methionine, has great potential for use as an alternative to l-methionine in the poultry industry and as an anti-cancer drug. This study developed an environment friendly process for KMTB production from l-methionine by an Escherichia coli whole-cell biocatalyst expressing an engineered l-amino acid deaminase (l-AAD) from Proteus vulgaris. We first overexpressed the P. vulgaris l-AAD in E. coli BL21 (DE3) and further optimized the whole-cell transformation process. The maximal molar conversion ratio of l-methionine to KMTB was 71.2% (mol/mol) under the optimal conditions (70 g/L l-methionine, 20 g/L whole-cell biocatalyst, 5 mM CaCl2, 40°C, 50 mM Tris-HCl [pH 8.0]). Then, error-prone polymerase chain reaction was used to construct P. vulgaris l-AAD mutant libraries. Among approximately 104 mutants, two mutants bearing lysine 104 to arginine and alanine 337 to serine substitutions showed 82.2% and 80.8% molar conversion ratios, respectively. Furthermore, the combination of these mutations enhanced the catalytic activity and molar conversion ratio by 1.3-fold and up to 91.4% with a KMTB concentration of 63.6 g/L. Finally, the effect of immobilization on whole-cell transformation was examined, and the immobilized whole-cell biocatalyst with Ca2+ alginate increased reusability by 41.3% compared to that of free cell production. Compared with the traditional multi-step chemical synthesis, our one-step biocatalytic production of KMTB has an advantage in terms of environmental pollution and thus has great potential for industrial KMTB production.
机译:α-酮基-γ-甲基硫代丁酸(KMTB)是l-蛋氨酸的酮衍生物,在禽类工业中具有替代l-蛋氨酸的潜力,并具有抗癌作用。这项研究开发了一种环境友好的方法,可通过表达来自寻常变形杆菌的工程化的l-氨基酸脱氨酶(l-AAD)的大肠杆菌全细胞生物催化剂从l-蛋氨酸生产KMTB。我们首先在大肠杆菌BL21(DE3)中过表达了P. vulgaris l-AAD,并进一步优化了全细胞转化过程。在最佳条件下(70 g / L l-蛋氨酸,20 g / L全细胞生物催化剂,5 mM CaCl2、40°C,50),最佳条件下l-蛋氨酸向KMTB的最大摩尔转化率为71.2%(mol / mol)。 mM Tris-HCl [pH 8.0]。然后,将易于出错的聚合酶链反应用于构建寻常型毕赤酵母1-AAD突变体文库。在大约10 4 突变体中,两个由赖氨酸104取代为精氨酸和丙氨酸337取代为丝氨酸的突变体的摩尔转化率分别为82.2%和80.8%。此外,这些突变的组合将催化活性和摩尔转化率提高了1.3倍,最高达到91.4%,KMTB浓度为63.6 g / L。最后,研究了固定化对全细胞转化的影响,与游离细胞生产相比,固定化藻类Ca 2 + 藻类全细胞生物催化剂可重复利用性提高了41.3%。与传统的多步化学合成相比,我们的KMTB一步生物催化生产在环境污染方面具有优势,因此具有工业KMTB生产的巨大潜力。

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