Michelle Grandin H, Guillaume-Gentil Orane, Zambelli Tomaso, Mayer Michael, Houghtaling Jared, Palivan Cornelia G, Textor Marcus, Höök Fredrik
Alfred E. Mann Institute of Biomedical Engineering, University of Southern California, 1042 Downey Way, DRB Building, Suite 101, Los Angeles, California 90089-1112.
Institute of Microbiology, ETH Zürich, HCI F 437, Vladimir-Prelog-Weg 1-5/10, CH-8093 Zurich, Switzerland.
Biointerphases. 2018 Jul 26;13(4):040801. doi: 10.1116/1.5037582.
The genesis for this topical review stems from the interdisciplinary Biointerfaces International conference 2016 (BI 2016) in Zurich, Switzerland, wherein the need for advances in analytical tools was both expressed and addressed. Pushing the limits of detection for characterizing individual components, such as single proteins, single drug-delivery vehicles, or probing single living cells in a more natural environment, will contribute to the understanding of the complex biomolecular systems central to a number of applications including medical diagnostics, tissue engineering, and drug screening and delivery. Accordingly, the authors begin with an overview of single nanoparticle analytics highlighting two emerging techniques and how they compare with existing techniques. The first is based on single particle tracking of nanoparticles tethered to a mobile supported lipid bilayer, enabling the simultaneous characterization of both size and composition of individual nanoparticles. The second technique is based on probing variations in the ionic conduction across nanoscale apertures for detection of not only nanoparticles but also membrane-tethered proteins, thereby allowing a multiparameter characterization of individual nanoscopic objects, addressing their size, shape, charge, and dipole moment. Subsequently, the authors lead into an example of an area of application that stands to benefit from such advances in bioanalytics, namely, the development of biomimetic lipid- and polymer-based assemblies as stimuli-responsive artificial organelles and nanocarriers designed to optimize delivery of next generation high-molecular-weight biological drugs. This in turn motivates the need for additional advanced techniques for investigating the cellular response to drug delivery, and so the review returns again to bioanalytics, in this case single-cell analysis, while highlighting a technique capable of probing and manipulating the content of individual living cells via fluidic force microscopy. In presenting a concerted movement in the field of bioinspired bioanalytics, positioned in the context of drug delivery, while also noting the critical role of surface modifications, it is the authors' aim to evaluate progress in the field of single component bioanalytics and to emphasize the impact of initiating and maintaining a fruitful dialogue among scientists, together with clinicians and industry, to guide future directions in this area and to steer innovation to successful translation.
本次专题综述的起源是2016年在瑞士苏黎世举行的跨学科国际生物界面会议(BI 2016),会议中表达并讨论了对分析工具取得进展的需求。突破检测极限以表征单个成分,如单个蛋白质、单个药物递送载体,或在更自然的环境中探测单个活细胞,将有助于理解许多应用(包括医学诊断、组织工程以及药物筛选和递送)核心的复杂生物分子系统。因此,作者首先概述了单纳米颗粒分析,重点介绍了两种新兴技术以及它们与现有技术的比较。第一种技术基于对拴系在移动支持脂质双分子层上的纳米颗粒进行单颗粒跟踪,能够同时表征单个纳米颗粒的大小和组成。第二种技术基于探测纳米级孔径上离子传导的变化,不仅用于检测纳米颗粒,还用于检测膜拴系蛋白,从而实现对单个纳米物体的多参数表征,确定其大小、形状、电荷和偶极矩。随后,作者引入了一个有望从生物分析的此类进展中受益的应用领域实例,即开发基于脂质和聚合物的仿生组装体,作为刺激响应性人工细胞器和纳米载体,旨在优化下一代高分子量生物药物的递送。这反过来又激发了对用于研究细胞对药物递送反应的其他先进技术的需求,因此综述再次回到生物分析,此次是单细胞分析,同时重点介绍了一种能够通过流体力显微镜探测和操纵单个活细胞内容物的技术。在介绍生物启发式生物分析领域在药物递送背景下的协同发展时,并指出表面修饰的关键作用,作者旨在评估单组分生物分析领域的进展,并强调在科学家、临床医生和行业之间发起并保持富有成效对话的重要性,以指导该领域的未来方向,并推动创新成果转化。