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关于通过小管形成穿梭穿过血脑屏障:机制与货物亲和力偏向

On the shuttling across the blood-brain barrier via tubule formation: Mechanism and cargo avidity bias.

作者信息

Tian Xiaohe, Leite Diana M, Scarpa Edoardo, Nyberg Sophie, Fullstone Gavin, Forth Joe, Matias Diana, Apriceno Azzurra, Poma Alessandro, Duro-Castano Aroa, Vuyyuru Manish, Harker-Kirschneck Lena, Šarić Anđela, Zhang Zhongping, Xiang Pan, Fang Bin, Tian Yupeng, Luo Lei, Rizzello Loris, Battaglia Giuseppe

机构信息

School of Life Science, Anhui University, Hefei, P. R. China.

Department of Chemistry, Anhui University, Hefei, P. R. China.

出版信息

Sci Adv. 2020 Nov 27;6(48). doi: 10.1126/sciadv.abc4397. Print 2020 Nov.

Abstract

The blood-brain barrier is made of polarized brain endothelial cells (BECs) phenotypically conditioned by the central nervous system (CNS). Although transport across BECs is of paramount importance for nutrient uptake as well as ridding the brain of waste products, the intracellular sorting mechanisms that regulate successful receptor-mediated transcytosis in BECs remain to be elucidated. Here, we used a synthetic multivalent system with tunable avidity to the low-density lipoprotein receptor-related protein 1 (LRP1) to investigate the mechanisms of transport across BECs. We used a combination of conventional and super-resolution microscopy, both in vivo and in vitro, accompanied with biophysical modeling of transport kinetics and membrane-bound interactions to elucidate the role of membrane-sculpting protein syndapin-2 on fast transport via tubule formation. We show that high-avidity cargo biases the LRP1 toward internalization associated with fast degradation, while mid-avidity augments the formation of syndapin-2 tubular carriers promoting a fast shuttling across.

摘要

血脑屏障由受中枢神经系统(CNS)表型调节的极化脑内皮细胞(BEC)构成。尽管跨BEC的转运对于营养物质摄取以及清除脑内废物至关重要,但调节BEC中成功的受体介导转胞吞作用的细胞内分选机制仍有待阐明。在此,我们使用了一种对低密度脂蛋白受体相关蛋白1(LRP1)亲和力可调的合成多价系统,来研究跨BEC的转运机制。我们在体内和体外结合使用了传统显微镜和超分辨率显微镜,并辅以转运动力学和膜结合相互作用的生物物理模型,以阐明膜塑形蛋白syndapin-2在通过小管形成进行快速转运中的作用。我们发现,高亲和力货物使LRP1倾向于与快速降解相关的内化,而中等亲和力则增强了syndapin-2管状载体的形成,促进快速穿梭。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c63/7695481/d97541769740/abc4397-F1.jpg

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