计算生物学
生物发生
微泡
生物
细胞生物学
核酸
功能(生物学)
外体
核糖核蛋白
内生
核糖核酸
竞争性内源性RNA
分类
细胞外小泡
机制(生物学)
蛋白质靶向
串扰
化学
原细胞
合成生物学
杠杆(统计)
小干扰RNA
支架蛋白
融合蛋白
清脆的
生物信息学
计算机科学
细胞外
蛋白质工程
RNA剪接
RNA结合蛋白
纳米生物技术
作者
Yì Wáng,Wenxuan Zhao,Xiaoming Hu,Yishu Wang,Peidong Yang,Diwei Zheng,Yue Wang,G L,Min Shi,Wei Wei,Shuang Wang
标识
DOI:10.1002/advs.202524231
摘要
Extracellular vesicles (EVs) have emerged as versatile biological carriers capable of transporting diverse therapeutic cargos. Their endogenous biogenesis pathways provide unique opportunities to regulate cargo selection through both environmental modulation and genetic programming. This review outlines how EV-producing cells can be reprogrammed to load functional proteins and nucleic acids by combining environmental cues with genetic modifications that leverage intrinsic sorting machinery and engineered molecular interactions. For protein cargo, we outline strategies that reshape EV composition through physiological stimuli, as well as genetically encoded systems designed to recruit proteins via scaffold fusion, peptide tags, or fusion-independent mechanisms. For nucleic acid cargo, we highlight approaches that leverage environment-driven alterations in RNA abundance, together with targeted loading methods that rely on scaffold-RNA-binding proteins (RBPs) fusion constructs, natural sorting motifs, and sorting-related RBPs to enrich miRNAs, mRNAs, and ribonucleoprotein complexes. We further summarize recent therapeutic applications of these endogenous engineering strategies in cardiovascular, hepatic, neurological diseases, and cancer. Finally, we discuss future directions, including high-throughput discovery of sorting elements, scalable biomanufacturing, and improved standardization, which together will advance the development of programmable and clinically translatable EVs-based therapeutics.
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