信使核糖核酸
转染
翻译(生物学)
核糖核酸
细胞生物学
化学
遗传增强
脂质体
病毒包膜
衣壳
免疫系统
纳米技术
先天免疫系统
基因传递
生物
体内分布
输送系统
包络线(雷达)
癌症研究
病毒
细胞内
类病毒颗粒
生物物理学
肽
药物输送
肺
分子生物学
作者
Renhe Yu,Yukun Huang,Wen Shi,Qingyu Tao,Kexin Shi,Chenyun Zhang,Peiying Li,Jingfa Zhang,Lin Chen,Xinkai Nie,Antian Wang,Gan Jiang,Qingxiang Song,Qiaobin Huang,Yaoxing Chen,Sheng‐Tao Yu,Chen Fan,Yingjie Xu,Xiaoling Gao
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-04-13
卷期号:20 (16): 12321-12346
标识
DOI:10.1021/acsnano.5c21254
摘要
Precise and efficient delivery of messenger RNA (mRNA) to extrahepatic tissues remains a major challenge in advancing mRNA-based therapeutics. Although enveloped viruses and virus-like particles (VLPs) serve as natural RNA delivery systems with varied extrahepatic targeting capabilities, their clinical translation is often hampered by bottlenecks in tunability, safety, immunogenicity, and scalability. Here, we developed a bottom-up self-assembling enveloped virus-mimicking particle (EVMP) composed of highly simplified yet high-performance virus-mimicking peptide (VMP) and tissue-targeting envelope phospholipids. By employing virtual screening via molecular dynamics simulation, directed evolution via key assembling domain mutation, strategic N-terminal fatty acylation modifications, and precise adjustments to envelope phospholipid composition, we achieved high-efficiency delivery of mRNA to organs such as the lungs and spleen. Notably, the optimized lung-targeted EVMP achieved transfection in 37% of total lung cells, including 73% of endothelial cells and 28% of immune cells. In a metastatic lung tumor model, the lead EVMP loaded with IL-12 mRNA effectively suppressed tumor progression. Notably, EVMP demonstrated excellent long-term biosafety and the capacity for repeated administration, owing to their minimal immunogenic profile. This biomimetic virus-mimicking nanoplatform represents a transformative advance in mRNA delivery technologies, enabling effective and safe mRNA-based therapy for extrahepatic diseases. Furthermore, it establishes a generalizable strategy for bottom-up engineering of biomimetic materials with programmable tissue tropism and modular functionality.
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