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Comparative study of flux redistribution of metabolic pathway in glutamate production by two coryneform bacteria.

机译:两种棒状细菌在谷氨酸生产中代谢途径通量重新分布的比较研究。

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In amino acid production by coryneform bacteria, study on relationship between change in enzyme activities and production of a target amino acid is important. In glutamate production, Kawahara et al. discovered that the effect of decrease in 2-oxoglutamate dehydrogenase complex (ODHC) on glutamate production is essential (Kawahara et al., Biosci. Biotechnol. Biochem. 61(7) (1997) 1109). Significant reduction of the ODHC activity was observed in the cells under the several glutamate-productive conditions in Corynebacterium glutamicum. Recent progress in metabolic engineering enables us to quantitatively compare the flux redistribution of the different strains after change in enzyme activity precisely. In this paper, relationship between flux redistribution and change in enzyme activities after biotin deletion and addition of detergent (Tween 40) was studied in two coryneform bacteria, C. glutamicum and a newly isolated strain, Corynebacterium efficiens (Fudou et al., Int. J. Syst. Evol. Microbiol. 52(Part 4) 1127), based on metabolic flux analysis (MFA). It was observed that in both species the specific activities of isocitrate dehydrogenase (ICDH) and glutamate dehydrogenase (GDH) did not significantly change throughout the fermentation, while that of the ODHC significantly decreased after biotin depletion and Tween 40 addition. Flux redistribution clearly occurred after the decrease in ODHC specific activity. The difference in glutamate production between C. glutamicum and C. efficiens was caused by the difference in the degree of decrease in ODHC specific activity. The difference in Michaelis-Menten constants or K(m) value between ICDH, GDH, and ODHC explained the mechanism of flux redistribution at the branch point of 2-oxoglutarate. It was found that the K(m) values of ICDH and ODHC were much lower than that of GDH for both strains. It was quantitatively proved that the ODHC plays the most important role in controlling flux distribution at the key branch point of 2-oxoglutarate in both coryneform bacteria. Flux redistribution mechanism was well simulated by a Michaelis-Menten-based model with kinetic parameters. The knowledge of the mechanism of flux redistribution will contribute to improvement of glutamate production in coryneform bacteria.
机译:在棒状细菌的氨基酸生产中,研究酶活性的变化与目标氨基酸的生产之间的关系是重要的。在谷氨酸生产中,Kawahara等人。他发现2-氧代谷氨酸脱氢酶复合物(ODHC)的减少对谷氨酸产生的影响是必不可少的(Kawahara等,Biosci.Biotechnol.Biochem.61(7)(1997)1109)。在谷氨酸棒杆菌的几种谷氨酸生产条件下,在细胞中观察到ODHC活性的显着降低。代谢工程学的最新进展使我们能够精确地比较酶活性变化后不同菌株的通量再分布。在本文中,研究了两种谷氨酸棒状杆菌谷氨酸棒状杆菌和新分离的菌株棒状杆菌(Fudou等人,Int。 J. Syst。Evol。Microbiol。52(Part 4)1127),基于代谢通量分析(MFA)。观察到,在两种物种中,异柠檬酸脱氢酶(ICDH)和谷氨酸脱氢酶(GDH)的比活性在整个发酵过程中均没有显着变化,而在生物素耗竭和添加吐温40后,ODHC的比活性显着降低。 ODHC比活性降低后,显然发生了助焊剂重新分布。谷氨酸棒杆菌和角膜梭菌之间的谷氨酸产生差异是由于ODHC比活性降低程度的差异引起的。 ICDH,GDH和ODHC之间的Michaelis-Menten常数或K(m)值的差异说明了在2-氧戊二酸酯分支点处通量重新分布的机制。发现两种菌株的ICDH和ODHC的K(m)值均比GDH低。定量证明在两种棒状细菌中,ODHC在控制2-氧戊二酸关键分支点的通量分布中起着最重要的作用。通量通过基于Michaelis-Menten的动力学参数模型很好地模拟了通量再分配机制。通量再分配机理的知识将有助于改善棒状细菌中谷氨酸的产生。

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