Kinetics of competitive cometabolism under aerobic conditions

Michael H. Kim , Chihhao Fan , Shu-Yuan Pan , Ingyu Lee , YuPo Lin , Hyunook Kim
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引用次数: 7

Abstract

Commonly observed competitive substrate inhibition in cometabolism of organic contaminants is used as rate- and reducing-power-determining factors to develop a kinetic model of the competitive cometabolism. Analogous to the well-known theory of Leudeking-Piret kinetics where the product formation demands reducing power, cometabolism is modeled as a reducing power demanding process that also competes with microbial growth for the available reducing power from the degradation of energy-yielding primary substrate. The model further incorporates other growth-associated phenomena such as substrate inhibition and multiple growth/nongrowth substrate interactions that may occur during cometabolic transformation processes. The kinetic model is used successfully to predict a variety of degradation patterns of growth/nongrowth substrates, displayed by microbial cultures when exposed to different concentration ratios of growth to nongrowth substrate: a complete degradation of nongrowth substrates that coincides with the simultaneous depletion of a growth substrate and, in some other cases, an incomplete degradation of a nongrowth substrate following the complete depletion of a growth substrate. These distinct patterns of substrate degradation are attributed to intrinsic specificities of enzymes for cometabolism and lack of reducing power available from the growth substrate degradation. The efficacy of cometabolic capabilities of actively growing microbial cultures and pre-cultured resting cells is discussed in terms of reducing power available in such systems.

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有氧条件下竞争性共代谢动力学
在有机污染物的共代谢中,通常观察到的竞争性底物抑制被用作决定速率和降低功率的因素,以建立竞争性共代谢的动力学模型。与著名的Leudeking-Piret动力学理论(产物形成需要还原力)类似,共同代谢被建模为一个还原力要求的过程,该过程也与微生物生长竞争产生能量的主要底物降解的可用还原力。该模型进一步纳入了其他与生长相关的现象,如底物抑制和在共代谢转化过程中可能发生的多种生长/非生长底物相互作用。动力学模型成功地用于预测生长/非生长底物的各种降解模式,当暴露于不同浓度比的生长/非生长底物时,微生物培养物显示出:非生长底物的完全降解与生长底物的同时耗尽相一致,在其他一些情况下,在生长底物完全耗尽之后,非生长底物的完全降解。这些不同的底物降解模式归因于共代谢酶的内在特异性和生长底物降解缺乏可用的还原能力。积极生长的微生物培养物和预培养的静息细胞的代谢能力的功效在这类系统中减少可用功率的方面进行了讨论。
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