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蓝藻生物能量学与细胞生长和生产力的关系。

Cyanobacterial Bioenergetics in Relation to Cellular Growth and Productivity.

机构信息

Department of Microbiology and Molecular Genetics, Oklahoma State University, Stillwater, OK, USA.

出版信息

Adv Biochem Eng Biotechnol. 2023;183:25-64. doi: 10.1007/10_2022_215.

Abstract

Cyanobacteria, the evolutionary originators of oxygenic photosynthesis, have the capability to convert CO, water, and minerals into biomass using solar energy. This process is driven by intricate bioenergetic mechanisms that consist of interconnected photosynthetic and respiratory electron transport chains coupled. Over the last few decades, advances in physiochemical analysis, molecular genetics, and structural analysis have enabled us to gain a more comprehensive understanding of cyanobacterial bioenergetics. This includes the molecular understanding of the primary energy conversion mechanisms as well as photoprotective and other dissipative mechanisms that prevent photodamage when the rates of photosynthetic output, primarily in the form of ATP and NADPH, exceed the rates that cellular assimilatory processes consume these photosynthetic outputs. Despite this progress, there is still much to learn about the systems integration and the regulatory circuits that control expression levels for optimal cellular abundance and activity of the photosynthetic complexes and the cellular components that convert their products into biomass. With an improved understanding of these regulatory principles and mechanisms, it should be possible to optimally modify cyanobacteria for enhanced biotechnological purposes.

摘要

蓝藻是产氧光合作用的进化起源者,具有利用太阳能将 CO、水和矿物质转化为生物质的能力。这个过程是由复杂的生物能量机制驱动的,其中包括相互连接的光合作用和呼吸电子传递链的偶联。在过去的几十年中,生理化学分析、分子遗传学和结构分析的进展使我们能够更全面地了解蓝藻的生物能量学。这包括对主要能量转换机制的分子理解,以及在光合输出的速率(主要以 ATP 和 NADPH 的形式)超过细胞同化过程消耗这些光合输出的速率时,防止光损伤的光保护和其他耗散机制。尽管取得了这些进展,但仍有许多关于系统集成和调控回路的知识有待学习,这些调控回路控制着光合复合物和将其产物转化为生物质的细胞成分的表达水平,以达到最佳的细胞丰度和活性。通过更好地理解这些调控原则和机制,应该有可能对蓝藻进行最佳修饰,以增强生物技术应用。

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