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Polymer Microchips Integrating Solid-Phase Extraction and High-Performance Liquid Chromatography Using Reversed-Phase Polymethacrylate Monoliths

机译:使用反相聚甲基丙烯酸甲酯整体柱整合固相萃取和高效液相色谱的聚合物微芯片

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Polymer microfluidic chips employing in situ photopolymerized polymethacrylate monoliths for high-performance liquid chromatography separations of peptides is described. The integrated chip design employs a 15 cm long separation column containing a reversed-phase polymethacrylate monolith as a stationary phase, with its front end seamlessly coupled to a 5 mm long methacrylate monolith which functions as a solid-phase extraction (SPE) element for sample cleanup and enrichment, serving to increase both detection sensitivity and separation performance. In addition to sample concentration and separation, solvent splitting is also performed on-chip, allowing the use of a conventional LC pump for the generation of on-chip nanoflow solvent gradients. The integrated platform takes advantage of solvent bonding and a novel high-pressure needle interface which together enable the polymer chips to withstand internal pressures above 20 MPa (approx2900 psi) for efficient pressure-driven HPLC separations. Gradient reversed-phase separation of fluorescein-labeled model peptides and BSA tryptic digest are demonstrated using the microchip HPLC system. Online removal of free fluorescein and enrichment of labeled proteins are simultaneously achieved using the on-chip SPE column, resulting in a 150-fold improvement in sensitivity and a 10-fold reduction in peak width in the following microchip gradient LC separation.
机译:描述了采用原位光聚合的聚甲基丙烯酸甲酯整料的聚合物微流控芯片,用于肽的高效液相色谱分离。集成芯片设计采用一个15厘米长的分离柱,其中包含一个反相聚甲基丙烯酸酯整料作为固定相,其前端与5毫米长的甲基丙烯酸酯整料无缝耦合,用作样品的固相萃取(SPE)元素净化和富集,有助于提高检测灵敏度和分离性能。除样品浓缩和分离外,溶剂拆分也在芯片上进行,从而允许使用常规LC泵生成芯片上纳流溶剂梯度。集成平台利用了溶剂键合和新型高压针头接口的优势,这些接口共同使聚合物碎片能够承受高于20 MPa(约2900 psi)的内部压力,从而实现高效的压力驱动HPLC分离。使用微芯片HPLC系统证明了荧光素标记的模型肽和BSA胰蛋白酶消化物的梯度反相分离。使用芯片上SPE色谱柱可同时实现游离荧光素的在线去除和标记蛋白的富集,从而在随后的微芯片梯度LC分离中提高了150倍的灵敏度,并减少了10倍的峰宽。

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