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构建用于原位生化合成和多阶段释放的纳米级脂质体包脂质体。

Engineering a nanoscale liposome-in-liposome for in situ biochemical synthesis and multi-stage release.

作者信息

Pilkington Colin P, Gispert Ignacio, Chui Suet Y, Seddon John M, Elani Yuval

机构信息

Department of Chemistry, Molecular Science Research Hub, Imperial College London, London, UK.

Department of Chemical Engineering, Imperial College London, London, UK.

出版信息

Nat Chem. 2024 Oct;16(10):1612-1620. doi: 10.1038/s41557-024-01584-z. Epub 2024 Jul 15.

Abstract

Soft-matter nanoscale assemblies such as liposomes and lipid nanoparticles have the potential to deliver and release multiple cargos in an externally stimulated and site-specific manner. Such assemblies are currently structurally simplistic, comprising spherical capsules or lipid clusters. Given that form and function are intertwined, this lack of architectural complexity restricts the development of more sophisticated properties. To address this, we have devised an engineering strategy combining microfluidics and conjugation chemistry to synthesize nanosized liposomes with two discrete compartments, one within another, which we term concentrisomes. We can control the composition of each bilayer and tune both particle size and the dimensions between inner and outer membranes. We can specify the identity of encapsulated cargo within each compartment, and the biophysical features of inner and outer bilayers, allowing us to imbue each bilayer with different stimuli-responsive properties. We use these particles for multi-stage release of two payloads at defined time points, and as attolitre reactors for triggered in situ biochemical synthesis.

摘要

诸如脂质体和脂质纳米颗粒之类的软物质纳米级组装体有潜力以外部刺激和位点特异性的方式递送和释放多种货物。目前,此类组装体在结构上较为简单,由球形胶囊或脂质簇组成。鉴于形式与功能相互交织,这种结构复杂性的缺乏限制了更复杂特性的发展。为了解决这一问题,我们设计了一种结合微流控技术和共轭化学的工程策略,以合成具有两个离散隔室(一个在另一个内部)的纳米级脂质体,我们将其称为同心体。我们可以控制每个双层膜的组成,并调节颗粒大小以及内膜和外膜之间的尺寸。我们可以指定每个隔室内封装货物的特性,以及内膜和外膜的生物物理特征,从而使我们能够赋予每个双层膜不同的刺激响应特性。我们将这些颗粒用于在特定时间点进行两种有效载荷的多阶段释放,并用作触发原位生化合成的阿托升反应器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4983/11446840/fc09ddd92a42/41557_2024_1584_Fig1_HTML.jpg

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