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A thermodynamic theory of microbial growth

机译:微生物生长的热力学理论

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摘要

Our ability to model the growth of microbes only relies on empirical laws, fundamentally restricting our understanding and predictive capacity in many environmental systems. In particular, the link between energy balances and growth dynamics is still not understood. Here we demonstrate a microbial growth equation relying on an explicit theoretical ground sustained by Boltzmann statistics, thus establishing a relationship between microbial growth rate and available energy. The validity of our equation was then questioned by analyzing the microbial isotopic fractionation phenomenon, which can be viewed as a kinetic consequence of the differences in energy contents of isotopic isomers used for growth. We illustrate how the associated theoretical predictions are actually consistent with recent experimental evidences. Our work links microbial population dynamics to the thermodynamic driving forces of the ecosystem, which opens the door to many biotechnological and ecological developments.
机译:我们对微生物生长进行建模的能力仅取决于经验法则,从根本上限制了我们在许多环境系统中的理解和预测能力。尤其是,能量平衡与增长动力之间的联系仍然不明。在这里,我们证明了微生物生长方程,该方程依赖于玻耳兹曼统计所支持的明确的理论基础,从而建立了微生物生长速率与可用能量之间的关系。然后通过分析微生物同位素分馏现象来质疑我们方程的有效性,这可以看作是用于生长的同位素异构体能量含量差异的动力学结果。我们说明了相关的理论预测实际上与最近的实验证据是一致的。我们的工作将微生物种群动态与生态系统的热力学驱动力联系起来,这为许多生物技术和生态发展打开了大门。

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