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Modeling of Scale-Dependent Bacterial Growth by Chemical Kinetics Approach

机译:用化学动力学方法对规模依赖性细菌生长进行建模

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摘要

We applied the so-called chemical kinetics approach to complex bacterial growth patterns that were dependent on the liquid-surface-area-to-volume ratio (SA/V) of the bacterial cultures. The kinetic modeling was based on current experimental knowledge in terms of autocatalytic bacterial growth, its inhibition by the metabolite CO2, and the relief of inhibition through the physical escape of the inhibitor. The model quantitatively reproduces kinetic data of SA/V-dependent bacterial growth and can discriminate between differences in the growth dynamics of enteropathogenic E. coli, E. coli   JM83, and Salmonella typhimurium on one hand and Vibrio cholerae on the other hand. Furthermore, the data fitting procedures allowed predictions about the velocities of the involved key processes and the potential behavior in an open-flow bacterial chemostat, revealing an oscillatory approach to the stationary states.
机译:我们将所谓的化学动力学方法应用于复杂的细菌生长模式,该模式取决于细菌培养物的液体表面积/体积比(SA / V)。动力学建模基于当前的实验知识,包括自催化细菌的生长,其对代谢产物CO2的抑制以及通过抑制剂物理逃逸来减轻抑制。该模型定量再现了SA / V依赖性细菌生长的动力学数据,并且可以区分一方面是肠道致病性大肠杆菌,大肠杆菌JM83和鼠伤寒沙门氏菌,另一方面是霍乱弧菌的生长动力学差异。此外,数据拟合程序允许对涉及的关键过程的速度和开流细菌化学恒温器中的潜在行为进行预测,从而揭示了稳态的振荡方法。

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