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Suspension arrays based on nanoparticle-encoded microspheres for high-throughput multiplexed detection

机译:基于纳米粒子编码微球的悬架阵列用于高通量多重检测

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Spectrometrically or optically encoded microsphere based suspension array technology (SAT) is applicable to the high-throughput, simultaneous detection of multiple analytes within a small, single sample volume. Thanks to the rapid development of nanotechnology, tremendous progress has been made in the multiplexed detecting capability, sensitivity, and photostability of suspension arrays. In this review, we first focus on the current stock of nanoparticle-based barcodes as well as the manufacturing technologies required for their production. We then move on to discuss all existing barcode-based bioanalysis patterns, including the various labels used in suspension arrays, label-free platforms, signal amplification methods, and fluorescence resonance energy transfer (FRET)-based platforms. We then introduce automatic platforms for suspension arrays that use superparamagnetic nanoparticle-based microspheres. Finally, we summarize the current challenges and their proposed solutions, which are centered on improving encoding capacities, alternative probe possibilities, nonspecificity suppression, directional immobilization, and "point of care" platforms. Throughout this review, we aim to provide a comprehensive guide for the design of suspension arrays, with the goal of improving their performance in areas such as multiplexing capacity, throughput, sensitivity, and cost effectiveness. We hope that our summary on the state-of-the-art development of these arrays, our commentary on future challenges, and some proposed avenues for further advances will help drive the development of suspension array technology and its related fields.
机译:基于光谱或光学编码的微球悬浮阵列技术(SAT)适用于高通量,同时检测小而单个样品体积内的多种分析物。由于纳米技术的飞速发展,在悬浮阵列的多重检测能力,灵敏度和光稳定性方面取得了巨大的进步。在本文中,我们首先关注基于纳米粒子的条形码的现有库存以及其生产所需的制造技术。然后,我们继续讨论所有现有的基于条形码的生物分析模式,包括用于悬浮阵列,无标记平台,信号放大方法和基于荧光共振能量转移(FRET)的平台的各种标记。然后,我们介绍使用基于超顺磁性纳米粒子的微球的悬浮阵列的自动平台。最后,我们总结了当前的挑战及其提出的解决方案,这些解决方案的重点是提高编码能力,替代探针的可能性,非特异性抑制,方向固定和“护理点”平台。在整个审查过程中,我们旨在为悬架阵列的设计提供全面指南,以提高其在多路复用容量,吞吐量,灵敏度和成本效益等方面的性能。我们希望我们对这些阵列的最新发展的总结,对未来挑战的评论,以及为进一步发展提出的一些建议途径,将有助于推动悬浮阵列技术及其相关领域的发展。

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