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AMPfret:用于细胞能量状态的合成纳米传感器。

AMPfret: synthetic nanosensor for cellular energy states.

机构信息

Bristol Synthetic Biology Centre BrisSynBio, Biomedical Sciences, School of Biochemistry, University of Bristol, 1 Tankard's Close, Bristol BSH 1TD, U.K.

Laboratory of Fundamental and Applied Bioenergetics (LBFA) and SFR Environmental and Systems Biology (BEeSy), University of Grenoble Alpes and INSERM U1055, Rue de la Piscine, Domaine Universitaire, Gières 38610, France.

出版信息

Biochem Soc Trans. 2020 Feb 28;48(1):103-111. doi: 10.1042/BST20190347.

Abstract

Cellular energy is a cornerstone of metabolism and is crucial for human health and disease. Knowledge of the cellular energy states and the underlying regulatory mechanisms is therefore key to understanding cell physiology and to design therapeutic interventions. Cellular energy states are characterised by concentration ratios of adenylates, in particular ATP:ADP and ATP:AMP. We applied synthetic biology approaches to design, engineer and validate a genetically encoded nano-sensor for cellular energy state, AMPfret. It employs the naturally evolved energy sensing of eukaryotic cells provided by the AMP-activated protein kinase (AMPK). Our synthetic nano-sensor relies on fluorescence resonance energy transfer (FRET) to detect changes in ATP:ADP and ATP:AMP ratios both in vitro and in cells in vivo. Construction and iterative optimisation relied on ACEMBL, a parallelised DNA assembly and construct screening technology we developed, facilitated by a method we termed tandem recombineering (TR). Our approach allowed rapid testing of numerous permutations of the AMPfret sensor to identify the most sensitive construct, which we characterised and validated both in the test tube and within cells.

摘要

细胞能量是新陈代谢的基石,对人类健康和疾病至关重要。因此,了解细胞能量状态和潜在的调节机制是理解细胞生理学和设计治疗干预措施的关键。细胞能量状态的特征是腺苷酸的浓度比,特别是 ATP:ADP 和 ATP:AMP。我们应用合成生物学方法来设计、工程和验证一种用于细胞能量状态的基因编码纳米传感器,即 AMPfret。它利用真核细胞中自然进化的能量感应,由 AMP 激活的蛋白激酶(AMPK)提供。我们的合成纳米传感器依赖于荧光共振能量转移(FRET)来检测体外和体内细胞中 ATP:ADP 和 ATP:AMP 比率的变化。构建和迭代优化依赖于我们开发的并行 DNA 组装和构建筛选技术 ACEMBL,这得益于我们称之为串联重组(TR)的方法。我们的方法允许快速测试 AMPfret 传感器的许多排列组合,以确定最敏感的构建体,我们在试管中和细胞内对其进行了表征和验证。

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