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Lighting Up Live-Cell and In Vivo Central Carbon Metabolism with Genetically Encoded Fluorescent Sensors
Annual Review of Analytical Chemistry ( IF 8 ) Pub Date : 2020-06-12 , DOI: 10.1146/annurev-anchem-091619-091306
Zhuo Zhang 1, 2 , Xiawei Cheng 1, 2 , Yuzheng Zhao 1, 2 , Yi Yang 1, 3
Affiliation  

As the core component of cell metabolism, central carbon metabolism, consisting of glycolysis, the pentose phosphate pathway, and the tricarboxylic acid cycle converts nutrients into metabolic precursors for biomass and energy to sustain the life of virtually all extant species. The metabolite levels or distributions in central carbon metabolism often change dynamically with cell fates, development, and disease progression. However, traditional biochemical methods require cell lysis, making it challenging to obtain spatiotemporal information about metabolites in living cells and in vivo. Genetically encoded fluorescent sensors allow the rapid, sensitive, specific, and real-time readout of metabolite dynamics in living organisms, thereby offering the potential to fill the gap in current techniques. In this review, we introduce recent progress made in the development of genetically encoded fluorescent sensors for central carbon metabolism and discuss their advantages, disadvantages, and applications. Moreover, several future directions of metabolite sensors are also proposed.

中文翻译:


用遗传编码的荧光传感器照亮活细胞和体内中心碳代谢

作为细胞代谢的核心成分,由糖酵解,磷酸戊糖途径和三羧酸循环组成的中心碳代谢将营养物质转化为生物质和能量的代谢前体,从而维持了几乎所有现存物种的生命。中央碳代谢中的代谢物水平或分布通常随细胞命运,发育和疾病进展而动态变化。但是,传统的生化方法需要细胞裂解,因此很难获得有关活细胞和体内代谢产物的时空信息。基因编码的荧光传感器可以快速,灵敏,特异和实时地读取生物体内代谢物的动态,从而提供了填补现有技术空白的潜力。在这篇评论中 我们介绍了用于中心碳代谢的基因编码荧光传感器的最新进展,并讨论了它们的优缺点和应用。此外,还提出了代谢物传感器的几个未来方向。

更新日期:2020-06-12
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