Xu Nan, Liu Liming, Zou Wei, Liu Jie, Hua Qiang, Chen Jian
State Key Laboratory of Food Science and Technology, Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu 214122, China.
Mol Biosyst. 2013 Feb 2;9(2):205-16. doi: 10.1039/c2mb25311a. Epub 2012 Nov 22.
Candida glabrata has been recognized as an efficient industrial microorganism for the production of pyruvate, the most widely used α-oxocarboxylic acid in the areas of agrochemicals, drugs, and chemicals. To gain a comprehensive understanding of its physiology and cellular metabolism, the genome-scale metabolic model for C. glabrata (named iNX804), comprising 804 genes, 1287 reactions, and 1025 metabolites, was reconstructed by genome sequence annotation and biochemical data mining. The flux balance analysis data of model iNX804 exhibited good agreement with the experimental data, including the phenotypic data and the carbon flux distribution. The model iNX804 predicted that C. glabrata can synthesize a high concentration of pyruvate because it has a strong glucose transport capacity and three pyruvate biosynthesis pathways and is deficient in key steps in vitamin synthesis. Furthermore, the metabolic capacity of pyruvate and other fine chemicals derived from pyruvate was evaluated by in silico deletion and overexpression of several key genes. The metabolic model iNX804 provides a potential platform for global elucidation of the metabolism of C. glabrata.
光滑念珠菌已被公认为是一种高效的工业微生物,可用于生产丙酮酸,丙酮酸是农用化学品、药物和化学领域中使用最广泛的α-氧代羧酸。为了全面了解其生理学和细胞代谢,通过基因组序列注释和生化数据挖掘,构建了光滑念珠菌的基因组规模代谢模型(命名为iNX804),该模型包含804个基因、1287个反应和1025个代谢物。模型iNX804的通量平衡分析数据与实验数据表现出良好的一致性,包括表型数据和碳通量分布。模型iNX804预测,光滑念珠菌能够合成高浓度的丙酮酸,因为它具有强大的葡萄糖转运能力和三条丙酮酸生物合成途径,并且在维生素合成的关键步骤中存在缺陷。此外,通过对几个关键基因进行计算机模拟缺失和过表达,评估了丙酮酸和其他源自丙酮酸的精细化学品的代谢能力。代谢模型iNX804为全面阐明光滑念珠菌的代谢提供了一个潜在平台。