School of Biological Sciences, University of East Anglia, Norwich Research Park, Norwich NR4 7TJ, United Kingdom.
Institute of Molecular Plant Sciences, School of Biological Sciences, University of Edinburgh, Edinburgh EH9 3BF, United Kingdom.
Biosci Rep. 2020 Apr 30;40(4). doi: 10.1042/BSR20193325.
Cyanobacteria are key organisms in the global ecosystem, useful models for studying metabolic and physiological processes conserved in photosynthetic organisms, and potential renewable platforms for production of chemicals. Characterizing cyanobacterial metabolism and physiology is key to understanding their role in the environment and unlocking their potential for biotechnology applications. Many aspects of cyanobacterial biology differ from heterotrophic bacteria. For example, most cyanobacteria incorporate a series of internal thylakoid membranes where both oxygenic photosynthesis and respiration occur, while CO2 fixation takes place in specialized compartments termed carboxysomes. In this review, we provide a comprehensive summary of our knowledge on cyanobacterial physiology and the pathways in Synechocystis sp. PCC 6803 (Synechocystis) involved in biosynthesis of sugar-based metabolites, amino acids, nucleotides, lipids, cofactors, vitamins, isoprenoids, pigments and cell wall components, in addition to the proteins involved in metabolite transport. While some pathways are conserved between model cyanobacteria, such as Synechocystis, and model heterotrophic bacteria like Escherichia coli, many enzymes and/or pathways involved in the biosynthesis of key metabolites in cyanobacteria have not been completely characterized. These include pathways required for biosynthesis of chorismate and membrane lipids, nucleotides, several amino acids, vitamins and cofactors, and isoprenoids such as plastoquinone, carotenoids, and tocopherols. Moreover, our understanding of photorespiration, lipopolysaccharide assembly and transport, and degradation of lipids, sucrose, most vitamins and amino acids, and haem, is incomplete. We discuss tools that may aid our understanding of cyanobacterial metabolism, notably CyanoSource, a barcoded library of targeted Synechocystis mutants, which will significantly accelerate characterization of individual proteins.
蓝细菌是全球生态系统中的关键生物,是研究光合生物中保守的代谢和生理过程的有用模型,也是生产化学品的潜在可再生平台。 表征蓝细菌的代谢和生理学是理解其在环境中的作用并释放其用于生物技术应用的潜力的关键。 蓝细菌生物学的许多方面与异养细菌不同。 例如,大多数蓝细菌包含一系列内部类囊体膜,其中发生需氧光合作用和呼吸作用,而 CO2 固定发生在称为羧化体的专门隔室中。 在这篇综述中,我们全面总结了我们对蓝细菌生理学以及参与合成糖基代谢物、氨基酸、核苷酸、脂质、辅助因子、维生素、类异戊二烯、色素和细胞壁成分的途径的知识,除了参与代谢物运输的蛋白质。 虽然一些途径在模式蓝细菌(如 Synechocystis)和模式异养细菌(如 Escherichia coli)之间是保守的,但许多参与蓝细菌中关键代谢物生物合成的酶和/或途径尚未完全表征。 这些途径包括合成分支酸和膜脂质、核苷酸、几种氨基酸、维生素和辅助因子以及质体醌、类胡萝卜素和生育酚等类异戊二烯所需的途径。 此外,我们对光呼吸、脂多糖组装和运输以及脂质、蔗糖、大多数维生素和氨基酸以及血红素的降解的理解是不完整的。 我们讨论了可能有助于我们理解蓝细菌代谢的工具,特别是 CyanoSource,这是一个靶向 Synechocystis 突变体的带条形码文库,它将极大地加速单个蛋白质的表征。