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Enzymatic origin and various curvatures of metabolic scaling in microbes

机译:微生物的酶促起源和代谢垢的各种曲率

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摘要

The famous and controversial power law is a basal metabolic scaling model mainly derived from the “surface rule” or a fractal transport network. However, this law neglects biological mechanisms in the important active state. Here, we hypothesized that the relative metabolic rate and growth rate of actively growing microbes are driven by the changeable rate of their rate-limiting enzymes and concluded that natural logarithmic microbial metabolism (lnλ) and growth (or biomass) (lnM) are both dependent on limiting resources, and then developed novel models with interdependence between lnλ and lnM. We tested the models using the data obtained from the literature. We explain how and why the scaling is usually curved with the difference between microbial metabolic and growth (or biomass’s) half-saturation constants (KM, Kλ) in the active state and agree that the linear relationship of the power law is a particular case under the given condition: KM = Kλ, which means that the enzyme dynamics may drive active and basal metabolic scaling relationships. Our interdependent model is more general than the power law, which is important for integrating the ecology and biochemical processes.
机译:著名且有争议的幂律是一种基础代谢比例模型,主要来自“表面规则”或分形传输网络。但是,该法则忽略了处于重要活动状态的生物机制。在这里,我们假设主动生长的微生物的相对代谢率和增长率受其限速酶的变化率驱动,并得出结论自然对数微生物代谢(lnλ)和生长(或生物量)(lnM)均取决于关于限制资源,然后开发了lnλ和lnM之间相互依赖的新颖模型。我们使用从文献中获得的数据对模型进行了测试。我们解释了在活动状态下缩放的方式以及为什么缩放通常会随着微生物代谢和生长(或生物量)半饱和常数(KM,Kλ)之间的差异而弯曲,并同意幂律的线性关系在以下情况下是特殊情况在给定条件下:KM =Kλ,这意味着酶动力学可以驱动活跃的和基础的代谢比例关系。我们的相互依存模型比幂律更笼统,这对于整合生态学和生化过程很重要。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Liyan Li; Genxuan Wang;

  • 作者单位
  • 年(卷),期 -1(9),-1
  • 年度 -1
  • 页码 4082
  • 总页数 12
  • 原文格式 PDF
  • 正文语种
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