化学
生物物理学
脂质双层
核酸
纳米颗粒
体内分布
脂蛋白
肽
脂质双层融合
细胞外
蛋白质-蛋白质相互作用
蛋白质吸附
生物化学
膜
融合蛋白
合理设计
吸附
融合
体内
日冕(行星地质学)
细胞膜
生物素化
纳米技术
血浆蛋白结合
分子动力学
蛋白质聚集
细胞生物学
蛋白质结构
体外
蛋白质折叠
核糖核酸
细胞
生物膜
肽序列
膜蛋白
静电
作者
Shaun Grumelot,Naseeha Mohammed,Ghafar Yerima,Jorge A. Colón-Rosado,Seyed Amirhossein Sadeghi,Fei Fang,Kylie Hilsen,Brooke Shango,Amir Ata Saei,Amanda M. Murray,Michael J. Mitchell,Babak Borhan,Liangliang Sun,Hojatollah Vali,Mohammad R. K. Mofrad,Kathryn A. Whitehead,Morteza Mahmoudi
出处
期刊:Nano Letters
[American Chemical Society]
日期:2026-08-11
标识
DOI:10.1021/acs.nanolett.6c00689
摘要
Abstract The protein corona influences the in vivo biodistribution of ionizable lipid nanoparticles (LNPs) in nucleic acid delivery, yet their structural architecture remains poorly defined. Using cryo-transmission electron microscopy, we visualized LNP–protein interactions in their native state. We show that, unlike the discrete “fuzzy” shells observed on hard nanoparticles, LNPs displayed no peripheral protein shell. Instead, controlled incubation and competitive “dual-particle” assays, supported by molecular dynamics simulations, indicate that LNP membranes undergo localized thickening and electron-dense remodeling consistent with lipoprotein integration rather than surface adsorption. Similar features were observed in extracellular vesicles, suggesting that this behavior is shared among lipid-based carriers, and proteomic analysis identified apolipoproteins as the dominant associated proteins. Together, these findings support a model in which the biological identity of LNPs arises through membrane remodeling rather than shell-like adsorption and provide a framework for the rational design of targeted nanomedicines.
科研通智能强力驱动
Strongly Powered by AbleSci AI