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网格蛋白包被小泡形成过程中 G 蛋白偶联受体活性和功能的时空特征。

Spatiotemporal Characterization of GPCR Activity and Function during Endosomal Trafficking Pathway.

机构信息

Brain Science Institute, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea.

Division of Bio-Medical Science & Technology, KIST School, Korea University of Science and Technology, Seoul 02792, Republic of Korea.

出版信息

Anal Chem. 2021 Feb 2;93(4):2010-2017. doi: 10.1021/acs.analchem.0c03323. Epub 2021 Jan 5.

Abstract

G protein-coupled receptor (GPCR) is activated by extracellular signals. After their function at plasma membrane, GPCRs are internalized to be desensitized, while emerging evidence suggests that some GPCRs maintain their activity even after internalization. The endosomal trafficking pathway of a prototypic GPCR, β adrenergic receptor 2 (B2AR), is in the range of several hours, however, spatiotemporal B2AR activity during this long-term endosomal trafficking pathway has not been characterized yet. Here, we analyze an agonist-induced real-time B2AR activity and its downstream function at the level of individual vesicles, utilizing a fluorescence resonance energy transfer (FRET)-based B2AR biosensor and cAMP reporters tethered at different trafficking stages of endosomes. Our results report that the internalized B2ARs sustain the activity and maintain the production of cAMP for several hours during the endosomal trafficking pathway. Temporal kinetics of B2AR activity is mathematically well explained by our active-vesicle population model modified from the Ricker model. Therefore, our GPCR monitoring system and a new kinetics model can be applied to understand the spatiotemporal GPCR activity and its downstream function during the endosomal trafficking pathway.

摘要

G 蛋白偶联受体(GPCR)可被细胞外信号激活。在它们位于质膜上发挥功能后,GPCR 会被内化从而脱敏,但新出现的证据表明,一些 GPCR 即使在被内化后仍能保持活性。原型 GPCR,β肾上腺素能受体 2(B2AR)的内体运输途径为数小时,但在这个长期的内体运输途径中,B2AR 的时空活性尚未得到描述。在这里,我们利用基于荧光共振能量转移(FRET)的 B2AR 生物传感器和在不同内体运输阶段连接的 cAMP 报告器,在单个囊泡水平上分析激动剂诱导的实时 B2AR 活性及其下游功能。我们的结果表明,在整个内体运输途径中,内化的 B2AR 持续保持数小时的活性并维持 cAMP 的产生。B2AR 活性的时间动力学通过我们从 Ricker 模型修改的活性囊泡群体模型得到了很好的数学解释。因此,我们的 GPCR 监测系统和新的动力学模型可用于了解内体运输途径中 GPCR 活性及其下游功能的时空变化。

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