小窝
跨细胞
体内
细胞生物学
内皮
小窝蛋白1
活体细胞成像
分子成像
生物
内吞作用
细胞
生物化学
信号转导
内分泌学
生物技术
作者
Phil Oh,Per Borgström,Halina Witkiewicz,Yan Li,Bengt Borgström,Adrián Chrastina,Koji Iwata,Kurt R. Zinn,Richard K. Baldwin,Jacqueline E. Testa,Jan E. Schnitzer
摘要
How effectively and quickly endothelial caveolae can transcytose in vivo is unknown, yet critical for understanding their function and potential clinical utility. Here we use quantitative proteomics to identify aminopeptidase P (APP) concentrated in caveolae of lung endothelium. Electron microscopy confirms this and shows that APP antibody targets nanoparticles to caveolae. Dynamic intravital fluorescence microscopy reveals that targeted caveolae operate effectively as pumps, moving antibody within seconds from blood across endothelium into lung tissue, even against a concentration gradient. This active transcytosis requires normal caveolin-1 expression. Whole body γ-scintigraphic imaging shows rapid, specific delivery into lung well beyond that achieved by standard vascular targeting. This caveolar trafficking in vivo may underscore a key physiological mechanism for selective transvascular exchange and may provide an enhanced delivery system for imaging agents, drugs, gene-therapy vectors and nanomedicines. 'In vivo proteomic imaging' as described here integrates organellar proteomics with multiple imaging techniques to identify an accessible target space that includes the transvascular pumping space of the caveola.
科研通智能强力驱动
Strongly Powered by AbleSci AI