脂质体
化学
生物物理学
小泡
纳米技术
核酸
细胞
模块化设计
细胞内
DNA
胞外囊泡
细胞膜
细胞外
人工细胞
细胞外小泡
膜
脂质双层
选择性
细胞生物学
生物系统
脂泡
微泡
合成生物学
表面工程
生物化学
药物输送
基因传递
结构化
活细胞
微流控
作者
Diana A. Tanase,Layla Malouf,Roger Rubio‐Sánchez,Catherine Fan,Karan Jain,Bortolo Matteo Mognetti,Lorenzo Di Michele
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-07-10
卷期号:20 (28): 19942-19955
被引量:2
标识
DOI:10.1021/acsnano.5c16730
摘要
Cells use a combination of membrane-bound and membrane-less compartments to dynamically orchestrate internal biochemical processes and sustain intracellular communication. Recapitulating the hierarchical integration and interplay between these physically and chemically diverse structures is required to enhance the functionalities of synthetic cells and other advanced biomimetic systems. Here, we describe the use of synthetic DNA condensates to selectively uptake and spatially organize lipid vesicles, interacting with the condensates thanks to cholesterol-DNA anchors. By modulating anchor density, the liposomes can be programmably localized on the surface or interior of the condensates, while base-pairing selectivity can be leveraged to target individual internal domains in multiphasic condensates. The embedded liposomes can be released by adding a nucleic acid trigger and captured by a second condensate population, thus imitating extracellular vesicles in their ability to support long-range cellular communication. This modular platform demonstrates the potential of DNA-based condensates to program the spatial distribution of membranous subcompartments and to support dynamic cargo-handling capabilities. These features are valuable for engineering cell mimics, microreactors, and delivery systems.
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