Extracellular vesicle in vivo biodistribution is determined by cell source, route of administration and targeting

体内分布 体内 脾脏 离体 细胞生物学 胞外囊泡 药理学 化学 小泡 生物 微泡 免疫学 生物化学 小RNA 生物技术 基因
作者
Oscar P. B. Wiklander,Joel Z. Nordin,Aisling J. O’Loughlin,Ylva Gustafsson,Giulia Corso,Imre Mäger,Pieter Vader,Yi Lee,Helena Sork,Yiqi Seow,Nina Heldring,Lydia Alvarez‐Erviti,Smith Rjh,Katarina Le Blanc,Paolo Macchiarini,Philipp Jungebluth,Matthew J. A. Wood,Samir EL Andaloussi
出处
期刊:Journal of extracellular vesicles [Taylor & Francis]
卷期号:4 (1): 26316-26316 被引量:1611
标识
DOI:10.3402/jev.v4.26316
摘要

Extracellular vesicles (EVs) have emerged as important mediators of intercellular communication in a diverse range of biological processes. For future therapeutic applications and for EV biology research in general, understanding the in vivo fate of EVs is of utmost importance. Here we studied biodistribution of EVs in mice after systemic delivery. EVs were isolated from 3 different mouse cell sources, including dendritic cells (DCs) derived from bone marrow, and labelled with a near-infrared lipophilic dye. Xenotransplantation of EVs was further carried out for cross-species comparison. The reliability of the labelling technique was confirmed by sucrose gradient fractionation, organ perfusion and further supported by immunohistochemical staining using CD63-EGFP probed vesicles. While vesicles accumulated mainly in liver, spleen, gastrointestinal tract and lungs, differences related to EV cell origin were detected. EVs accumulated in the tumour tissue of tumour-bearing mice and, after introduction of the rabies virus glycoprotein-targeting moiety, they were found more readily in acetylcholine-receptor-rich organs. In addition, the route of administration and the dose of injected EVs influenced the biodistribution pattern. This is the first extensive biodistribution investigation of EVs comparing the impact of several different variables, the results of which have implications for the design and feasibility of therapeutic studies using EVs.
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