Westermark Stefanie, Steuer Ralf
Fachinstitut für Theoretische Biologie (ITB), Institut für Biologie, Humboldt-Universität zu Berlin , Berlin , Germany.
Front Bioeng Biotechnol. 2016 Dec 26;4:95. doi: 10.3389/fbioe.2016.00095. eCollection 2016.
Oxygenic photosynthesis dominates global primary productivity ever since its evolution more than three billion years ago. While many aspects of phototrophic growth are well understood, it remains a considerable challenge to elucidate the manifold dependencies and interconnections between the diverse cellular processes that together facilitate the synthesis of new cells. Phototrophic growth involves the coordinated action of several layers of cellular functioning, ranging from the photosynthetic light reactions and the electron transport chain, to carbon-concentrating mechanisms and the assimilation of inorganic carbon. It requires the synthesis of new building blocks by cellular metabolism, protection against excessive light, as well as diurnal regulation by a circadian clock and the orchestration of gene expression and cell division. Computational modeling allows us to quantitatively describe these cellular functions and processes relevant for phototrophic growth. As yet, however, computational models are mostly confined to the inner workings of individual cellular processes, rather than describing the manifold interactions between them in the context of a living cell. Using cyanobacteria as model organisms, this contribution seeks to summarize existing computational models that are relevant to describe phototrophic growth and seeks to outline their interactions and dependencies. Our ultimate aim is to understand cellular functioning and growth as the outcome of a coordinated operation of diverse yet interconnected cellular processes.
自三十多亿年前光合放氧作用进化以来,它一直主导着全球初级生产力。虽然光合生长的许多方面已被充分理解,但要阐明共同促进新细胞合成的各种细胞过程之间的多种依赖性和相互联系,仍然是一项巨大的挑战。光合生长涉及多层细胞功能的协同作用,从光合光反应和电子传递链,到碳浓缩机制和无机碳的同化。它需要通过细胞代谢合成新的构件,抵御过量光照,以及由生物钟进行昼夜调节,协调基因表达和细胞分裂。计算建模使我们能够定量描述与光合生长相关的这些细胞功能和过程。然而,到目前为止,计算模型大多局限于单个细胞过程的内部运作,而不是在活细胞的背景下描述它们之间的多种相互作用。以蓝细菌为模式生物,本论文旨在总结与描述光合生长相关的现有计算模型,并概述它们的相互作用和依赖性。我们的最终目标是将细胞功能和生长理解为多种相互关联的细胞过程协同运作的结果。