Max-Planck-Institute for Solid State Research, Heisenbergstrasse 1, 70569 Stuttgart, Germany.
Cell Mol Life Sci. 2012 Feb;69(3):373-88. doi: 10.1007/s00018-011-0855-7. Epub 2011 Oct 19.
Nanostructures appear to be promising for a number of applications in molecular diagnostics, mainly due to the increased surface-to-volume ratio they can offer, the very low limit of detection achievable, and the possibility to fabricate point-of-care diagnostic devices. In this paper, we review examples of the use of nanostructures as diagnostic tools that bring in marked improvements over prevalent classical assays. The focus is laid on the various sensing paradigms that possess the potential or have demonstrated the capability to replace or augment current analytical strategies. We start with a brief introduction of the various types of nanostructures and their physical properties that determine the transduction principle. This is followed by a concise collection of various functionalization protocols used to immobilize biomolecules on the nanostructure surface. The sensing paradigms are discussed in two contexts: the nanostructure acting as a label for detection, or the nanostructure acting as a support upon which the molecular recognition events take place. In order to be successful in the field of molecular diagnostics, it is important that the nanoanalytical tools be evaluated in the appropriate biological environment. The final section of the review compiles such examples, where the nanostructure-based diagnostic tools have been tested on realistic samples such as serum, demonstrating their analytical power even in the presence of complex matrix effects. The ability of nanodiagnostic tools to detect ultralow concentrations of one or more analytes coupled with portability and the use of low sample volumes is expected to have a broad impact in the field of molecular diagnostics.
纳米结构在分子诊断中的许多应用中似乎很有前景,主要是因为它们可以提供增加的表面积与体积比、可实现的极低检测限,以及制造即时诊断设备的可能性。在本文中,我们综述了将纳米结构用作诊断工具的示例,这些工具在许多方面都优于流行的经典检测方法。重点介绍了各种具有潜在能力或已经证明有能力替代或增强当前分析策略的传感模式。我们首先简要介绍了决定传感原理的各种类型的纳米结构及其物理特性。接着简要介绍了用于将生物分子固定在纳米结构表面上的各种功能化方案。我们从两个方面讨论了传感模式:纳米结构作为检测标记的作用,或纳米结构作为分子识别事件发生的支撑物的作用。为了在分子诊断领域取得成功,很重要的是要在适当的生物环境中评估纳米分析工具。本综述的最后一部分汇总了此类示例,其中基于纳米结构的诊断工具已在血清等实际样本中进行了测试,即使在存在复杂基质效应的情况下,这些工具也展示了它们的分析能力。纳米诊断工具能够检测一种或多种分析物的超低浓度,加上便携性和小样本量的使用,有望在分子诊断领域产生广泛影响。