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细胞膜包覆纳米技术。

Cell Membrane Coating Nanotechnology.

机构信息

Department of NanoEngineering and Moores Cancer Center, University of California San Diego, La Jolla, CA, 92093, USA.

出版信息

Adv Mater. 2018 Jun;30(23):e1706759. doi: 10.1002/adma.201706759. Epub 2018 Mar 27.

DOI:10.1002/adma.201706759
PMID:29582476
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5984176/
Abstract

Nanoparticle-based therapeutic, prevention, and detection modalities have the potential to greatly impact how diseases are diagnosed and managed in the clinic. With the wide range of nanomaterials available, the rational design of nanocarriers on an application-specific basis has become increasingly commonplace. Here, a comprehensive overview is provided on an emerging platform: cell-membrane-coating nanotechnology. As a fundamental unit of biology, cells carry out a wide range of functions, including the remarkable ability to interface and interact with their surrounding environment. Instead of attempting to replicate such functions via synthetic techniques, researchers are now directly leveraging naturally derived cell membranes as a means of bestowing nanoparticles with enhanced biointerfacing capabilities. This top-down technique is facile, highly generalizable, and has the potential to greatly augment existing nanocarriers. Further, the introduction of a natural membrane substrate onto nanoparticles surfaces has enabled additional applications beyond those traditionally associated with nanomedicine. Despite its relative youth, there exists an impressive body of literature on cell membrane coating, which is covered here in detail. Overall, there is still significant room for development, as researchers continue to refine existing workflows while finding new and exciting applications that can take advantage of this developing technology.

摘要

基于纳米颗粒的治疗、预防和检测方法有可能极大地影响临床疾病的诊断和管理方式。随着各种纳米材料的广泛应用,根据特定应用需求对纳米载体进行合理设计已变得越来越普遍。在这里,我们对一个新兴平台进行了全面概述:细胞膜包覆纳米技术。作为生物学的基本单位,细胞执行着广泛的功能,包括与周围环境进行界面和相互作用的显著能力。研究人员现在不再试图通过合成技术来复制这些功能,而是直接利用天然衍生的细胞膜作为赋予纳米颗粒增强生物界面能力的手段。这种自上而下的技术简单易行、高度通用,并且有可能极大地增强现有的纳米载体。此外,将天然膜基质引入纳米颗粒表面,使纳米载体除了在传统的纳米医学领域之外,还能够应用于其他领域。尽管它相对较新,但关于细胞膜包覆的文献已经相当丰富,本文对此进行了详细介绍。总的来说,仍然有很大的发展空间,因为研究人员在不断完善现有工作流程的同时,也在寻找能够利用这项新兴技术的新的令人兴奋的应用。

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本文引用的文献

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Structural elucidation of cell membrane-derived nanoparticles using molecular probes.使用分子探针进行细胞膜衍生纳米颗粒的结构解析
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Targeting and Enrichment of Viral Pathogen by Cell Membrane Cloaked Magnetic Nanoparticles for Enhanced Detection.基于细胞膜伪装的磁性纳米颗粒的病毒病原体靶向与富集及其增强检测
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Macrophage-like nanoparticles concurrently absorbing endotoxins and proinflammatory cytokines for sepsis management.巨噬细胞样纳米颗粒同时吸收内毒素和促炎细胞因子以用于脓毒症管理。
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A biomimetic theranostic O-meter for cancer targeted photodynamic therapy and phosphorescence imaging.一种用于癌症靶向光动力治疗和磷光成像的仿生治疗 O 计。
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Fabrication and characterization of a 3D bioprinted nanoparticle-hydrogel hybrid device for biomimetic detoxification.3D 生物打印纳米颗粒-水凝胶杂化装置的制备与表征及其仿生解毒性能
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