Microfluidic chips are promising for on-site analysis in medical diagnostics and food safety because they enable miniaturized, integrated sample processing. However, the analysis of complex, salt-rich matrices of biological and food samples remain challenging for conventional closed chips and electrokinetic pretreatment methods. Here, we developed an open, reconfigurable electrophoresis chip based on liquid plasticine, in which a moving neutralization reaction electrophoresis system (MNRES) was implemented for high-salt sample pretreatment. Liquid plasticine enabled facile construction of pump-free, valve-free, optically transparent, and cuttable open reservoirs and channels. In the MNRES, OH– and H+ generated by water electrolysis reacted with NH4+ and CH3COO–, producing moving neutralization reaction boundaries accompanied by dynamic electric field and pH gradients. These two coupled gradients enabled salt removal, field amplified stacking, and meanwhile the pH gradient induced protein focusing, thereby allowing simultaneous enrichment and purification of proteins and anionic species. It is demonstrated that proteins and anionic species in 0.9% NaCl solution can be effectively separated and enriched by approximately 10-fold. Moreover, the MNRES-pretreated analyte zones can be directly monitored by smartphone-based online colorimetry or transferred to liquid-plasticine microreactors for offline chromogenic assays. This work provides a flexible open-fluidic strategy for integrated electrokinetic pretreatment and visual detection of complex high-salt samples.
Jicheng Niu, Wenxuan Fu, Bin Su et al.· Analytical Chemistry· 0 citations
A compartmentalization-free electrochemiluminescence (ECL) digital immunoassay based on silica-coated gold nanorod (AuNR@SiO2) for detecting tumor necrosis factor-α secreted by activated T cells and demonstrates promising potential for clinical translation.
Yajuan Yan, Jialian Ding, Tengyu Li et al.· Analytical Chemistry· 1 citation
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