外体
原子转移自由基聚合
微泡
生物物理学
聚合物
药物输送
聚合
聚合物囊泡
化学
表面改性
纳米技术
材料科学
生物化学
生物
共聚物
有机化学
两亲性
基因
物理化学
小RNA
作者
Sushil Lathwal,Saigopalakrishna S. Yerneni,Susanne Boye,Upenyu L. Muza,Shuntaro Takahashi,Naoki Sugimoto,Albena Lederer,Subha R. Das,Phil G. Campbell,Krzysztof Matyjaszewski
标识
DOI:10.1073/pnas.2020241118
摘要
Exosomes are emerging as ideal drug delivery vehicles due to their biological origin and ability to transfer cargo between cells. However, rapid clearance of exogenous exosomes from the circulation as well as aggregation of exosomes and shedding of surface proteins during storage limit their clinical translation. Here, we demonstrate highly controlled and reversible functionalization of exosome surfaces with well-defined polymers that modulate the exosome’s physiochemical and pharmacokinetic properties. Using cholesterol-modified DNA tethers and complementary DNA block copolymers, exosome surfaces were engineered with different biocompatible polymers. Additionally, polymers were directly grafted from the exosome surface using biocompatible photo-mediated atom transfer radical polymerization (ATRP). These exosome polymer hybrids (EPHs) exhibited enhanced stability under various storage conditions and in the presence of proteolytic enzymes. Tuning of the polymer length and surface loading allowed precise control over exosome surface interactions, cellular uptake, and preserved bioactivity. EPHs show fourfold higher blood circulation time without altering tissue distribution profiles. Our results highlight the potential of precise nanoengineering of exosomes toward developing advanced drug and therapeutic delivery systems using modern ATRP methods.
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