Development and use of fluorescent nanosensors for metabolite imaging in living cells
Open Access
- 1 February 2005
- journal article
- Published by Portland Press Ltd. in Biochemical Society Transactions
- Vol. 33 (1) , 287-290
- https://doi.org/10.1042/bst0330287
Abstract
To understand metabolic networks, fluxes and regulation, it is crucial to be able to determine the cellular and subcellular levels of metabolites. Methods such as PET and NMR imaging have provided us with the possibility of studying metabolic processes in living organisms. However, at present these technologies do not permit measuring at the subcellular level. The cameleon, a fluorescence resonance energy transfer (FRET)-based nanosensor uses the ability of the calcium-bound form of calmodulin to interact with calmodulin binding polypeptides to turn the corresponding dramatic conformational change into a change in resonance energy transfer between two fluorescent proteins attached to the fusion protein. The cameleon and its derivatives were successfully used to follow calcium changes in real time not only in isolated cells, but also in living organisms. To provide a set of tools for real-time measurements of metabolite levels with subcellular resolution, protein-based nanosensors for various metabolites were developed. The metabolite nanosensors consist of two variants of the green fluorescent protein fused to bacterial periplasmic binding proteins. Different from the cameleon, a conformational change in the binding protein is directly detected as a change in FRET efficiency. The prototypes are able to detect various carbohydrates such as ribose, glucose and maltose as purified proteins in vitro. The nanosensors can be expressed in yeast and in mammalian cell cultures and were used to determine carbohydrate homeostasis in living cells with subcellular resolution. One future goal is to expand the set of sensors to cover a wider spectrum of metabolites by using the natural spectrum of bacterial periplasmic binding proteins and by computational design of the binding pockets of the prototype sensors.Keywords
This publication has 37 references indexed in Scilit:
- Differentiation of legume cotyledons as related to metabolic gradients and assimilate transport into seedsJournal of Experimental Botany, 2003
- Using array hybridization to monitor gene expression at the single cell levelJournal of Experimental Botany, 2002
- Analysis of the Compartmentation of Glycolytic Intermediates, Nucleotides, Sugars, Organic Acids, Amino Acids, and Sugar Alcohols in Potato Tubers Using a Nonaqueous Fractionation MethodPlant Physiology, 2001
- Amino acid analysis in five pooled single plant cell samples using capillary electrophoresis coupled to laser-induced fluorescence detectionJournal of Chromatography A, 2001
- The biological application of small animal PET imagingNuclear Medicine and Biology, 2001
- Is the infiltration‐centrifugation technique appropriate for the isolation of apoplastic fluid? A critical evaluation with different plant speciesPhysiologia Plantarum, 2001
- Where do all the ions go? The cellular basis of differential ion accumulation in leaf cellsTrends in Plant Science, 2000
- High‐resolution histographical mapping of glucose concentrations in developing cotyledons ofVicia fabain relation to mitotic activity and storage processes: glucose as a possible developmental triggerThe Plant Journal, 1998
- Zonation of Parenchymal and Nonparenchymal Metabolism in LiverAnnual Review of Nutrition, 1996
- Subcellular Volumes and Metabolite Concentrations in Potato (Solanum tuberosum cv. Désirée) Leaves1Botanica Acta, 1995