Peters-Wendisch P G, Wendisch V F, de Graaf A A, Eikmanns B J, Sahm H
Institut für Biotechnologie 1, Forschungszentrum Jülich, D-52425 Jülich, Germany.
Arch Microbiol. 1996 Jun;165(6):387-96. doi: 10.1007/s002030050342.
Phosphoenolpyruvate carboxylase (PEPCx) has recently been found to be dispensable as an anaplerotic enzyme for growth and lysine production of Corynebacterium glutamicum. To clarify the role of the glyoxylate cycle as a possible alternative anaplerotic sequence, defined PEPCx- and isocitrate-lyase (ICL)-negative double mutants of C. glutamicum wild-type and of the l-lysine-producing strain MH20-22B were constructed by disruption of the respective genes. Analysis of these mutants revealed that the growth on glucose and the lysine productivity were identical to that of the parental strains. These results show that PEPCx and the glyoxylate cycle are not essential for growth of C. glutamicum on glucose and for lysine production and prove the presence of another anaplerotic reaction in this organism. To study the anaplerotic pathways in C. glutamicum further, H13CO3--labeling experiments were performed with cells of the wild-type and a PEPCx-negative strain growing on glucose. Proton nuclear magnetic resonance analysis of threonine isolated from cell protein of both strains revealed the same labeling pattern: about 37% 13C enrichment in C-4 and 3.5% 13C enrichment in C-1. Since the carbon backbone of threonine corresponds to that of oxaloacetate, the label in C-4 of threonine positively identifies the anaplerotic pathway as a C3-carboxylation reaction that also takes place in the absence of PEPCx.
最近发现,磷酸烯醇丙酮酸羧化酶(PEPCx)对于谷氨酸棒杆菌的生长和赖氨酸生产而言并非必需的回补酶。为了阐明乙醛酸循环作为一种可能的替代回补序列的作用,通过破坏各自的基因构建了谷氨酸棒杆菌野生型以及产L-赖氨酸菌株MH20-22B的特定PEPCx和异柠檬酸裂解酶(ICL)阴性双突变体。对这些突变体的分析表明,它们在葡萄糖上的生长以及赖氨酸产量与亲本菌株相同。这些结果表明,PEPCx和乙醛酸循环对于谷氨酸棒杆菌在葡萄糖上的生长以及赖氨酸生产并非必不可少,并证明了该生物体中存在另一种回补反应。为了进一步研究谷氨酸棒杆菌中的回补途径,对在葡萄糖上生长的野生型细胞和PEPCx阴性菌株进行了H13CO3-标记实验。对从两种菌株的细胞蛋白中分离出的苏氨酸进行质子核磁共振分析,结果显示出相同的标记模式:C-4位约37%的13C富集以及C-1位3.5%的13C富集。由于苏氨酸的碳骨架与草酰乙酸的碳骨架相对应,苏氨酸C-4位的标记明确表明回补途径是一种C3羧化反应,且该反应在没有PEPCx的情况下也会发生。