神经油
葡萄糖转运蛋白
斑马鱼
葡萄糖摄取
生物
碳水化合物代谢
细胞生物学
生物物理学
体内
中枢神经系统
生物化学
化学
神经科学
胰岛素
内分泌学
生物技术
基因
作者
Jacob P. Keller,Jonathan S. Marvin,Haluk Lacin,William C. Lemon,Jamien Shea,Soomin Kim,Richard Lee,Minoru Koyama,Philipp Keller,Loren L. Looger
出处
期刊:Cell Reports
[Cell Press]
日期:2021-06-01
卷期号:35 (12): 109284-109284
被引量:44
标识
DOI:10.1016/j.celrep.2021.109284
摘要
Glucose is arguably the most important molecule in metabolism, and its dysregulation underlies diabetes. We describe a family of single-wavelength genetically encoded glucose sensors with a high signal-to-noise ratio, fast kinetics, and affinities varying over four orders of magnitude (1 μM to 10 mM). The sensors allow mechanistic characterization of glucose transporters expressed in cultured cells with high spatial and temporal resolution. Imaging of neuron/glia co-cultures revealed ∼3-fold faster glucose changes in astrocytes. In larval Drosophila central nervous system explants, intracellular neuronal glucose fluxes suggested a rostro-caudal transport pathway in the ventral nerve cord neuropil. In zebrafish, expected glucose-related physiological sequelae of insulin and epinephrine treatments were directly visualized. Additionally, spontaneous muscle twitches induced glucose uptake in muscle, and sensory and pharmacological perturbations produced large changes in the brain. These sensors will enable rapid, high-resolution imaging of glucose influx, efflux, and metabolism in behaving animals.
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