毛细管电泳
电动现象
电泳
色谱法
重复性
化学
微系统
荧光
分析化学(期刊)
等电聚焦
再现性
材料科学
纳米技术
光学
生物化学
物理
物理化学
酶
作者
Menel Ben Frej,Fanny d’Orlyé,Gerson F. Duarte‐Junior,Wendell K. T. Coltro,Anne Varenne
标识
DOI:10.1002/elps.202200057
摘要
A low-cost and straightforward hybrid NOA (Norland optical adhesive) 81-glass microchip electrophoresis device was designed and developed for protein separation using indirect fluorescence detection. This new microchip was first characterized in terms of surface charge density via electroosmotic mobility measurement and stability over time. A systematic determination of the electroosmotic mobility (μeo ) over a wide pH range (2-10) and at various ionic strengths (20-50 mM) was developed for the first time via the neutral marker approach in an original simple frontal methodology. The evolution of μeo was proved consistent with the silanol and thiol functions arising from the glass and the NOA materials, respectively. The repeatability and reproducibility of the measurements on different microchips (RSD < 14%) and within 15 days (less than 5% decrease) were successfully demonstrated. The microchip was then applied for the efficient electrophoretic separation of proteins in a zonal mode coupled with indirect fluorescence detection, which is, to our knowledge, the first proof of concept of capillary zone electrophoresis in this hybrid microsystem.
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