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本文引用的文献

1
Development and use of fluorescent nanosensors for metabolite imaging in living cells.用于活细胞代谢物成像的荧光纳米传感器的开发与应用。
Biochem Soc Trans. 2005 Feb;33(Pt 1):287-90. doi: 10.1042/BST0330287.
2
Live imaging of glucose homeostasis in nuclei of COS-7 cells.COS-7细胞核内葡萄糖稳态的实时成像
J Fluoresc. 2004 Sep;14(5):603-9. doi: 10.1023/b:jofl.0000039347.94943.99.
3
High temporal resolution for in vivo monitoring of neurotransmitters in awake epileptic rats using brain microdialysis and capillary electrophoresis with laser-induced fluorescence detection.利用脑微透析和激光诱导荧光检测的毛细管电泳对清醒癫痫大鼠体内神经递质进行体内监测的高时间分辨率。
J Neurosci Methods. 2004 Dec 30;140(1-2):29-38. doi: 10.1016/j.jneumeth.2004.03.025.
4
Role of glial amino acid transporters in synaptic transmission and brain energetics.胶质细胞氨基酸转运体在突触传递和脑能量代谢中的作用。
Glia. 2004 Aug 15;47(3):217-225. doi: 10.1002/glia.20027.
5
FRET imaging.荧光共振能量转移成像
Nat Biotechnol. 2003 Nov;21(11):1387-95. doi: 10.1038/nbt896.
6
Development of a fluorescent nanosensor for ribose.用于核糖的荧光纳米传感器的研发。
FEBS Lett. 2003 Oct 9;553(1-2):85-9. doi: 10.1016/s0014-5793(03)00976-1.
7
In vivo imaging of the dynamics of glucose uptake in the cytosol of COS-7 cells by fluorescent nanosensors.利用荧光纳米传感器对COS-7细胞胞质溶胶中葡萄糖摄取动力学进行体内成像。
J Biol Chem. 2003 May 23;278(21):19127-33. doi: 10.1074/jbc.M301333200. Epub 2003 Mar 20.
8
Construction of a fluorescent biosensor family.荧光生物传感器家族的构建。
Protein Sci. 2002 Nov;11(11):2655-75. doi: 10.1110/ps.021860.
9
Visualization of maltose uptake in living yeast cells by fluorescent nanosensors.利用荧光纳米传感器对活酵母细胞中麦芽糖摄取情况的可视化研究。
Proc Natl Acad Sci U S A. 2002 Jul 23;99(15):9846-51. doi: 10.1073/pnas.142089199. Epub 2002 Jul 3.
10
Conservation of amino acid transporters in fungi, plants and animals.真菌、植物和动物中氨基酸转运蛋白的保守性。
Trends Biochem Sci. 2002 Mar;27(3):139-47. doi: 10.1016/s0968-0004(01)02054-0.

通过基因编码的表面展示荧光共振能量转移纳米传感器检测神经元中谷氨酸的释放。

Detection of glutamate release from neurons by genetically encoded surface-displayed FRET nanosensors.

作者信息

Okumoto Sakiko, Looger Loren L, Micheva Kristina D, Reimer Richard J, Smith Stephen J, Frommer Wolf B

机构信息

Department of Plant Biology, Carnegie Institution of Washington, 260 Panama Street, Stanford, CA 94305, USA.

出版信息

Proc Natl Acad Sci U S A. 2005 Jun 14;102(24):8740-5. doi: 10.1073/pnas.0503274102. Epub 2005 Jun 6.

DOI:10.1073/pnas.0503274102
PMID:15939876
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1143584/
Abstract

Glutamate is the predominant excitatory neurotransmitter in the mammalian brain. Once released, its rapid removal from the synaptic cleft is critical for preventing excitotoxicity and spillover to neighboring synapses. Despite consensus on the role of glutamate in normal and disease physiology, technical issues limit our understanding of its metabolism in intact cells. To monitor glutamate levels inside and at the surface of living cells, genetically encoded nanosensors were developed. The fluorescent indicator protein for glutamate (FLIPE) consists of the glutamate/aspartate binding protein ybeJ from Escherichia coli fused to two variants of the green fluorescent protein. Three sensors with lower affinities for glutamate were created by mutation of residues peristeric to the ybeJ binding pocket. In the presence of ligands, FLIPEs show a concentration-dependent decrease in FRET efficiency. When expressed on the surface of rat hippocampal neurons or PC12 cells, the sensors respond to extracellular glutamate with a reversible concentration-dependent decrease in FRET efficiency. Depolarization of neurons leads to a reduction in FRET efficiency corresponding to 300 nM glutamate at the cell surface. No change in FRET was observed when cells expressing sensors in the cytosol were superfused with up to 20 mM glutamate, consistent with a minimal contribution of glutamate uptake to cytosolic glutamate levels. The results demonstrate that FLIPE sensors can be used for real-time monitoring of glutamate metabolism in living cells, in tissues, or in intact organisms, providing tools for studying metabolism or for drug discovery.

摘要

谷氨酸是哺乳动物大脑中主要的兴奋性神经递质。一旦释放,它从突触间隙的快速清除对于防止兴奋性毒性和扩散到相邻突触至关重要。尽管对于谷氨酸在正常和疾病生理学中的作用已达成共识,但技术问题限制了我们对其在完整细胞中代谢的理解。为了监测活细胞内部和表面的谷氨酸水平,人们开发了基因编码的纳米传感器。谷氨酸荧光指示剂蛋白(FLIPE)由来自大肠杆菌的谷氨酸/天冬氨酸结合蛋白ybeJ与绿色荧光蛋白的两个变体融合而成。通过对ybeJ结合口袋周围的残基进行突变,创建了三种对谷氨酸亲和力较低的传感器。在配体存在的情况下,FLIPE的荧光共振能量转移(FRET)效率呈现浓度依赖性降低。当在大鼠海马神经元或PC12细胞表面表达时,传感器对细胞外谷氨酸的反应是FRET效率呈可逆的浓度依赖性降低。神经元去极化导致FRET效率降低,相当于细胞表面300 nM的谷氨酸浓度。当用高达20 mM的谷氨酸对胞质溶胶中表达传感器的细胞进行灌流时,未观察到FRET的变化,这与谷氨酸摄取对胞质谷氨酸水平的贡献最小一致。结果表明,FLIPE传感器可用于实时监测活细胞、组织或完整生物体中的谷氨酸代谢,为研究代谢或药物发现提供工具。