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通过生物正交多孔水凝胶将微珠按检测水平进行空间分离,用于大小选择性分析和提高多重性。

Spatial Separation of Microbeads into Detection Levels by a Bioorthogonal Porous Hydrogel for Size-Selective Analysis and Increased Multiplexity.

机构信息

Institut für Chemie und Biochemie , Freie Universität Berlin , Takustraße 3 , 14195 Berlin , Germany.

Brandenburgische Technische Universität Cottbus-Senftenberg , Universitätsplatz 1 , 01968 Senftenberg , Germany.

出版信息

Anal Chem. 2019 Jul 2;91(13):8484-8491. doi: 10.1021/acs.analchem.9b01586. Epub 2019 Jun 20.

Abstract

Multiplex detection techniques are emerging within the fields of life science research and medical diagnostics where it is mandatory to analyze a great number of molecules. The detection techniques need to be highly efficient but often involve complicated and expensive fabrication procedures. Here, we present the immobilization and geometric separation of fluorescence-labeled microbeads for a multiplex detection in k levels. A compound of differently sized target molecules (DNA, proteins) is channeled into the respective detection levels by making use of a hydrogel as a size selective filter. The immobilized microbeads (10-20 μm) are considerably larger than the pores of the hydrogel network and therefore stay fixed at the well bottom and in higher elevations, respectively. Small biomolecules can diffuse through the pores of the network, whereas medium-sized biomolecules pass slower and large molecules will be excluded. Besides filtering, this method discriminates the used microbeads into k levels and thereby introduces a geometric multiplexity. Additionally, the exclusion of large entities enables the simultaneous detection of two target molecules, which exhibit the same affinity interaction. The hydrogel is formed through the combination of two macromonomers. One component is a homobifunctional polyethylene glycol linker, carrying a strained alkyne (PEG-BCN) and the second component is the azide-functionalized dendritic polyglycerol (dPG-N). They react via the bioorthogonal strain-promoted azide alkyne cycloaddition (SPAAC). The hydrogel creates a solution-like environment for the diffusion of the investigated biomolecules all the while providing a stable, bioinert, and surface bound network.

摘要

多元检测技术在生命科学研究和医学诊断领域中崭露头角,在这些领域中,必须分析大量的分子。这些检测技术需要高效,但往往涉及复杂和昂贵的制造工艺。在这里,我们展示了荧光标记微球的固定和几何分离,用于 k 级别的多重检测。不同大小的靶分子(DNA、蛋白质)的混合物通过利用水凝胶作为尺寸选择性过滤器进入各自的检测水平。固定化的微球(10-20μm)明显大于水凝胶网络的孔径,因此分别固定在孔底和较高的位置。小分子可以通过网络的孔扩散,而中等大小的分子通过较慢,大分子则被排斥。除了过滤之外,这种方法还将使用的微球区分成 k 级,从而引入了几何多重性。此外,对大物质的排除能够实现对两种具有相同亲和相互作用的靶分子的同时检测。水凝胶是通过两种大分子单体的组合形成的。一种成分是带有张力炔烃的同双官能化聚乙二醇接头(PEG-BCN),另一种成分是叠氮功能化的树枝状聚甘油(dPG-N)。它们通过生物正交的应变促进叠氮炔环加成(SPAAC)反应。水凝胶为被研究的生物分子的扩散提供了类似溶液的环境,同时提供了稳定、生物惰性和表面结合的网络。

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