Acetate metabolism and its regulation in Corynebacterium glutamicum

谷氨酸棒杆菌 柠檬酸循环 生物化学 乙醛酸循环 醋酸激酶 糖异生 代谢途径 生物 磷酸烯醇丙酮酸羧激酶 新陈代谢 糖酵解 乙酰辅酶A 化学 基因 大肠杆菌
作者
Robert Gerstmeir,Volker F. Wendisch,Stephanie Schnicke,Hong Ruan,Mike Farwick,Dieter J. Reinscheid,Bernhard J. Eikmanns
出处
期刊:Journal of Biotechnology [Elsevier]
卷期号:104 (1-3): 99-122 被引量:193
标识
DOI:10.1016/s0168-1656(03)00167-6
摘要

The amino acid producing Corynebacterium glutamicum grows aerobically on a variety of carbohydrates and organic acids as single or combined sources of carbon and energy. Among the substrates metabolized are glucose and acetate which both can also serve as substrates for amino acid production. Based on biochemical, genetic and regulatory studies and on quantitative determination of metabolic fluxes during utilization of acetate and/or glucose, this review summarizes the present knowledge on the different steps of the fundamental pathways of acetate utilization in C. glutamicum, namely, on acetate transport, acetate activation, tricarboxylic acid (TCA) cycle, glyoxylate cycle and gluconeogenesis. It becomes evident that, although the pathways of acetate utilization follow the same theme in many bacteria, important biochemical, genetic and regulatory peculiarities exist in C. glutamicum. Recent genome wide and comparative expression analyses in C. glutamicum cells grown on glucose and on acetate substantiated previously identified transcriptional regulation of acetate activating enzymes and of glyoxylate cycle enzymes. Additionally, a variety of genes obviously also under transcriptional control in response to the presence or absence of acetate in the growth medium were uncovered. These genes, thus also belonging to the acetate stimulon of C. glutamicum, include genes coding for TCA cycle enzymes (e.g. aconitase and succinate dehydrogenase), for gluconeogenesis (phosphoenolpyruvate carboxykinase), for glycolysis (pyruvate dehydrogenase E1) and genes coding for proteins with hitherto unknown function. Although the basic mechanism of transcriptional regulation of the enzymes involved in acetate metabolism is not yet understood, some recent findings led to a better understanding of the adaptation of C. glutamicum to acetate at the molecular level.
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