内大麻素系统
体内
荧光
动力学(音乐)
生物物理学
临床前影像学
生物
化学
受体
生物化学
物理
光学
声学
生物技术
作者
Ao Dong,Kaikai He,Barna Dudok,Jordan S. Farrell,Wuqiang Guan,Daniel J. Liput,Henry L. Puhl,Ruyi Cai,Huan Wang,Jiali Duan,Eddy Albarran,Jun Ding,David M. Lovinger,Bo Li,Iván Soltész,Yulong Li
标识
DOI:10.1038/s41587-021-01074-4
摘要
Endocannabinoids (eCBs) are retrograde neuromodulators with important functions in a wide range of physiological processes, but their in vivo dynamics remain largely uncharacterized. Here we developed a genetically encoded eCB sensor called GRABeCB2.0. GRABeCB2.0 consists of a circular-permutated EGFP and the human CB1 cannabinoid receptor, providing cell membrane trafficking, second-resolution kinetics with high specificity for eCBs, and shows a robust fluorescence response at physiological eCB concentrations. Using GRABeCB2.0, we monitored evoked and spontaneous changes in eCB dynamics in cultured neurons and acute brain slices. We observed spontaneous compartmentalized eCB transients in cultured neurons and eCB transients from single axonal boutons in acute brain slices, suggesting constrained, localized eCB signaling. When GRABeCB2.0 was expressed in the mouse brain, we observed foot shock-elicited and running-triggered eCB signaling in the basolateral amygdala and hippocampus, respectively. In a mouse model of epilepsy, we observed a spreading wave of eCB release that followed a Ca2+ wave through the hippocampus. GRABeCB2.0 is a robust probe for eCB release in vivo. A genetically encoded sensor reveals the dynamics of endocannabinoid signaling.
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