微泡
线粒体
细胞生物学
微泡
线粒体ROS
内皮干细胞
细胞外
细胞培养
化学
生物
体外
生物化学
小RNA
基因
遗传学
作者
Anisha D’Souza,Amelia Burch,Kandarp M. Dave,Aravind Sreeram,Michael Reynolds,Duncan X. Dobbins,Yashika S. Kamte,Wanzhu Zhao,Courtney Sabatelle,Gina M. Joy,Vishal Soman,Uma Chandran,Sruti S. Shiva,Nidia Quillinan,Paco S. Herson,Devika S. Manickam
标识
DOI:10.1016/j.jconrel.2021.08.038
摘要
We have demonstrated, for the first time that microvesicles, a sub-type of extracellular vesicles (EVs) derived from hCMEC/D3: a human brain endothelial cell (BEC) line transfer polarized mitochondria to recipient BECs in culture and to neurons in mice acute brain cortical and hippocampal slices. This mitochondrial transfer increased ATP levels by 100 to 200-fold (relative to untreated cells) in the recipient BECs exposed to oxygen-glucose deprivation, an in vitro model of cerebral ischemia. We have also demonstrated that transfer of microvesicles, the larger EV fraction, but not exosomes resulted in increased mitochondrial function in hypoxic endothelial cultures. Gene ontology and pathway enrichment analysis of EVs revealed a very high association to glycolysis-related processes. In comparison to heterotypic macrophage-derived EVs, BEC-derived EVs demonstrated a greater selectivity to transfer mitochondria and increase endothelial cell survival under ischemic conditions.
科研通智能强力驱动
Strongly Powered by AbleSci AI