衣壳
化学
基因传递
合理设计
转导(生物物理学)
生物正交化学
计算生物学
重定目标
细胞生物学
叶酸受体
翻译(生物学)
氨基酸
基因
生物物理学
基因组编辑
HEK 293细胞
遗传增强
内吞作用
生物化学
蛋白质工程
输送系统
细胞
分子生物学
基因组工程
血浆蛋白结合
受体
蛋白质-蛋白质相互作用
病毒载体
共价键
病毒
核酸酶
群体特异性抗原
结合选择性
作者
Yuanjie Zhang,Yingying Shi,Xueying Zhou,Xu Han,Fudi Wang,Jiawen Zhang,Jinhuan Luo,Xiaoyang Wang,Yiming Wang,Dezhong Ji,Sulong Xiao,Qi Wang,Lihe Zhang,Chuanling Zhang,Demin Zhou
标识
DOI:10.1021/acs.molpharmaceut.5c01166
摘要
The clinical translation of adeno-associated virus (AAV)-based gene therapies is often hindered by nonselective tissue transduction, off-target uptake by nontarget cells, and unintended toxicity to healthy tissues. To overcome these challenges, we previously developed a site-specific AAV capsid engineering strategy involving the incorporation of an azide-bearing unnatural amino acid (NAEK) into defined capsid positions, enabling precise, bioorthogonal conjugation of targeting ligands. In this study, we applied this approach to generate a series of folate receptor α (FRα)-targeted AAV2 vectors through covalent tethering of folic acid (FA) at specific capsid residues. FA conjugation at residues S264 + 1 and Q325 significantly enhanced FRα-mediated transduction, yielding a 3-5-fold increase in gene transfer efficiency in FRα-positive tumor cells. Structure-activity relationship analysis revealed that transduction selectivity is governed not only by ligand-receptor binding affinity but also by the spatial location of the conjugation site, which influences competition with the native AAV receptor (AAVR). Importantly, this modular conjugation platform allows for facile replacement of ligands, enabling the rational design of receptor-directed AAV vectors for targeted and cell-specific gene therapy. These findings provide mechanistic insights into capsid-receptor interactions and establish a flexible strategy for precision engineering of AAV-based delivery systems.
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