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Growth, metabolic partitioning, and the size of microorganisms

机译:微生物的生长,代谢分配和大小

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Population growth rate is a fundamental ecological and evolutionary characteristic of living organisms, but individuals must balance the metabolism devoted to biosynthesis and reproduction against the maintenance of existing structure and other functionality. Here we present a mathematical model that relates metabolic partitioning to the form of growth. The model captures the observed growth trajectory of single cells and individuals for a variety of species and taxa spanning prokaryotes, unicellular eukaryotes, and small multi-cellular eukaryotes. Our analysis suggests that the per-unit costs of biosynthesis and maintenance are conserved across prokaryotes and eukaryotes. However, the relative metabolic expenditure on growth and maintenance of whole organisms clearly differentiates taxa: prokaryotes spend an increasing fraction of their entire metabolism on growth with increasing cell size, whereas eukaryotes devote a diminishing fraction. These differences allow us to predict the minimum and maximum size for each taxonomic group, anticipating observed evolutionary life-history transitions. The framework provides energetic insights into taxonomic tradeoffs related to growth and metabolism and constrains traits that are important for size-structured modeling of microbial communities and their ecological and biogeochemical effects.
机译:人口增长率是生命有机体的基本生态和进化特征,但是个人必须平衡致力于生物合成和繁殖的新陈代谢与维持现有结构和其他功能之间的平衡。在这里,我们提出了一种将代谢分配与生长形式相关的数学模型。该模型捕获了跨原核生物,单细胞真核生物和小型多细胞真核生物的各种物种和分类单元的单细胞和个体观察到的生长轨迹。我们的分析表明,原核生物和真核生物的单位生物合成和维持成本得以保持。但是,在整个生物体的生长和维持方面的相对代谢支出明显区分了分类单元:原核生物将其全部代谢中的一部分花费在生长上,而随着细胞大小的增加,而真核生物只在其一部分上花费了一部分。这些差异使我们能够预测每个分类组的最小和最大大小,从而预期观察到的进化生命历史过渡。该框架为与生长和代谢有关的生物分类权衡提供了有力的见解,并限制了对于微生物群落的大小结构化建模及其生态和生物地球化学作用非常重要的特征。

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