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.
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Cover Image
Cover Image
The cover image depicts a combination of a 3D reconstruction of ER-TGN contact sites by focus ion beam-scanning electron microscopy (FIB-SEM) and five images showing the visualization of the contacts by FRET/FLIM. The 3D reconstruction of the Golgi stack was generated from FIB-SEM tomography of a HepG2 cell using IMOD software. The ER cisterna is shown in red (with ribosomes as white circles), while the trans-most cisterna of the Golgi stack is shown in green (with emerging clathrin-coated buds decorated by pink dots). The five FLIM images are from HeLa cells expressing a TGN reporter (TGN46-GFP) and an ER reporter (mCherry-Cb5). The pseudocolour scale represents donor (i.e. GFP) lifetime (τ) values ranging from 1.8 (blue) to 2.7 ns (red) under conditions that destabilize (left) or stabilize ER-TGN contact sites. For further information, see the review by Venditti and colleagues (pp. 187–197). Image courtesy of Maria Antonietta De Matteis.
AMPfret: synthetic nanosensor for cellular energy states
Hannah Crocker, Martin Pelosse, Uwe Schlattner, Imre Berger; AMPfret: synthetic nanosensor for cellular energy states. Biochem Soc Trans 28 February 2020; 48 (1): 103–111. doi: https://doi.org/10.1042/BST20190347
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