细胞生物学
细胞外小泡
体外
蛋白质工程
小分子
脚手架
化学
小泡
生物物理学
计算生物学
生物
生物化学
膜
计算机科学
酶
数据库
作者
Kevin Dooley,Russell E. McConnell,Ke Xu,Nuruddeen D. Lewis,Sonya Haupt,Madeleine R. Youniss,Shelly Martin,Chang Ling Sia,Christine McCoy,Raymond J. Moniz,Olga Burenkova,Jorge Sanchez-Salazar,Su Chul Jang,Bryan D. Choi,Rane A. Harrison,Damian J. Houde,Dalia Burzyn,Charan Leng,Katherine Kirwin,Nikki L. Ross
标识
DOI:10.1016/j.ymthe.2021.01.020
摘要
Extracellular vesicles (EVs) are an important intercellular communication system facilitating the transfer of macromolecules between cells. Delivery of exogenous cargo tethered to the EV surface or packaged inside the lumen are key strategies for generating therapeutic EVs. We identified two “scaffold” proteins, PTGFRN and BASP1, that are preferentially sorted into EVs and enable high-density surface display and luminal loading of a wide range of molecules, including cytokines, antibody fragments, RNA binding proteins, vaccine antigens, Cas9, and members of the TNF superfamily. Molecules were loaded into EVs at high density and exhibited potent in vitro activity when fused to full-length or truncated forms of PTGFRN or BASP1. Furthermore, these engineered EVs retained pharmacodynamic activity in a variety of animal models. This engineering platform provides a simple approach to functionalize EVs with topologically diverse macromolecules and represents a significant advance toward unlocking the therapeutic potential of EVs. Extracellular vesicles (EVs) are an important intercellular communication system facilitating the transfer of macromolecules between cells. Delivery of exogenous cargo tethered to the EV surface or packaged inside the lumen are key strategies for generating therapeutic EVs. We identified two “scaffold” proteins, PTGFRN and BASP1, that are preferentially sorted into EVs and enable high-density surface display and luminal loading of a wide range of molecules, including cytokines, antibody fragments, RNA binding proteins, vaccine antigens, Cas9, and members of the TNF superfamily. Molecules were loaded into EVs at high density and exhibited potent in vitro activity when fused to full-length or truncated forms of PTGFRN or BASP1. Furthermore, these engineered EVs retained pharmacodynamic activity in a variety of animal models. This engineering platform provides a simple approach to functionalize EVs with topologically diverse macromolecules and represents a significant advance toward unlocking the therapeutic potential of EVs.
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