Peters-Wendisch P G, Schiel B, Wendisch V F, Katsoulidis E, Möckel B, Sahm H, Eikmanns B J
Dept Microbiology and Biotechnology, University of Ulm, Germany.
J Mol Microbiol Biotechnol. 2001 Apr;3(2):295-300.
Corynebacterium glutamicum possesses both phosphoenolpyruvate carboxylase (PEPCx) and pyruvate carboxylase (PCx) as anaplerotic enzymes for growth on carbohydrates. To analyze the significance of PCx for the amino acid production by this organism, the wild-type pyc gene, encoding PCx, was used for the construction of defined pyc-inactive and pyc-overexpressing strains and the glutamate, lysine and threonine production capabilities of these recombinant strains of C. glutamicum were tested in comparison to the respective host strains. No PCx activity was observed in the pyc-inactive mutants whereas the pyc-overexpressing strains showed eight-to elevenfold higher specific PCx activity when compared to the host strains. In a detergent-dependent glutamate production assay, the pyc-overexpressing strain showed more than sevenfold higher, the PCx-deficient strain about twofold lower glutamate production than the wild-type. Overexpression of the pyc gene and thus increasing the PCx activity in a lysine-producing strain of C. glutamicum resulted in approximately 50% higher lysine accumulation in the culture supernatant whereas inactivation of the pyc gene led to a decrease by 60%. In a threonine-producing strain of C. glutamicum, the overexpression of the pyc gene led to an only 10 to 20% increase in threonine production, however, to a more than 150% increase in the production of the threonine precursor homoserine. These results identify the anaplerotic PCx reaction as a major bottleneck for amino acid production by C. glutamicum and show that the enzyme is an important target for the molecular breeding of hyperproducing strains.
谷氨酸棒杆菌拥有磷酸烯醇式丙酮酸羧化酶(PEPCx)和丙酮酸羧化酶(PCx)这两种回补酶,用于在碳水化合物上生长。为了分析PCx对该生物体氨基酸生产的重要性,编码PCx的野生型pyc基因被用于构建特定的pyc失活和pyc过表达菌株,并将这些谷氨酸棒杆菌重组菌株与各自的宿主菌株相比,测试其谷氨酸、赖氨酸和苏氨酸的生产能力。在pyc失活突变体中未观察到PCx活性,而与宿主菌株相比,pyc过表达菌株的比PCx活性高8至11倍。在依赖洗涤剂的谷氨酸生产测定中,pyc过表达菌株的谷氨酸产量比野生型高7倍多,PCx缺陷型菌株的谷氨酸产量比野生型低约2倍。在谷氨酸棒杆菌的赖氨酸生产菌株中,pyc基因的过表达从而增加PCx活性,导致培养上清液中的赖氨酸积累量提高约50%,而pyc基因的失活导致赖氨酸积累量减少60%。在谷氨酸棒杆菌的苏氨酸生产菌株中,pyc基因的过表达仅导致苏氨酸产量增加10%至20%,然而,苏氨酸前体高丝氨酸的产量增加超过150%。这些结果确定回补PCx反应是谷氨酸棒杆菌氨基酸生产的主要瓶颈,并表明该酶是高产菌株分子育种的重要靶点。