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Synthesis of Clickable Coating Polymers by Postpolymerization Modification: Applications in Microarray Technology

机译:通过后聚合修饰合成可点击的涂层聚合物:在微阵列技术中的应用

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In this paper, we report on the postpolymerization modification (PPM) of a polymer to introduce new functionalities that enable click chemistry reactions for microarray applications. The parent polymer, named copoly(DMA-NAS-MAPS), is composed of N,N-dimethylacrylamide (DMA), a monomer that self-adsorbs onto different materials through weak interactions such as hydrogen bonding or van der Waals forces, 3-(trimethoxysilyl)propyl methacrylate (MAPS) that strengthens the stability of the coating through the formation of covalent bonds with siloxane groups on the surface to be coated, and N-acryloyloxysuccinimide (NAS), an active ester group, highly reactive toward nucleophiles, which enables bioprobe immobilization. This copolymer has been widely exploited to coat surfaces for microarray applications but exhibits some limitations because of the potential hydrolysis of the active ester (NHS ester). The degradation of the NHS ester hampers the use of this coating in some situations, for example, when probe immobilization cannot be accomplished through a microspotting situation, but in large volumes, for example, in microchannel derivatization or micro-anoparticle functionalization. To overcome the limitations of NHS esters, we have developed a family of polymers that originate from the common copolymer precursor, by reacting the active ester contained in the polymer chain with a bifunctional amine. In particular, the functional groups introduced in the polymer using PPM enable click chemistry reactions such as azide/alkyne or thiol/maleimide "click" reactions, with suitably modified biomolecules. The advantages of such reactions are quantitative yields, orthogonality of functional groups, and insensitivity of the reaction to pH. The new click functionalities, inserted with quantitative yields, improve the stability of the coating, enabling the attachment of biomolecules directly from a solution and avoiding the spotting of reduced volumes (pL) of probes. Finally, we have demonstrated the applicability of the click surfaces in a highly effective solid-phase PCR for the genotyping of the G12D KRAS mutation.
机译:在本文中,我们报告了聚合物的聚合后修饰(PPM),以介绍新的功能,这些功能可实现微阵列应用的点击化学反应。母体聚合物称为共聚(DMA-NAS-MAPS),由N,N-二甲基丙烯酰胺(DMA)组成,该单体通过弱相互作用(例如氢键或范德华力)自动吸附到不同的材料上,3- (三甲氧基甲硅烷基)丙基甲基丙烯酸酯(MAPS)通过与待涂表面上的硅氧烷基团形成共价键来增强涂层的稳定性,而N-丙烯酰氧基琥珀酰亚胺(NAS)是对亲核试剂具有高反应活性的活性酯基,可以固定生物探针。该共聚物已被广泛地用于微阵列应用的涂层表面,但是由于活性酯(NHS酯)的潜在水解作用而显示出一些局限性。 NHS酯的降解会在某些情况下(例如,无法通过微量点胶实现探针固定化,但在大批量情况下,例如在微通道衍生化或微米/纳米粒子功能化中)会妨碍该涂层的使用。为了克服NHS酯的局限性,我们通过使聚合物链中所含的活性酯与双官能胺反应,开发了一种源自普通共聚物前体的聚合物家族。特别地,使用PPM引入聚合物中的官能团使得能够进行点击化学反应,例如叠氮化物/炔或硫醇/马来酰亚胺的“点击”反应,以及适当修饰的生物分子。这种反应的优点是定量收率,官能团的正交性和反应对pH的不敏感性。插入新功能后,可以定量获得产量,从而提高了涂层的稳定性,可以直接从溶液中附着生物分子,并避免了探针体积减小(pL)的斑点。最后,我们证明了点击表面在高效固相PCR中对G12D KRAS突变的基因分型的适用性。

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