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DSPE-Ti-Chip: A Dual-Functionalized Microfluidic Device for High-Efficiency Isolation of Extracellular Vesicle from
Guoshan Hou1,2, Yan Dong3, Min Zhang1
1State Key Laboratory of Medical Proteomics, National Chromatographic Research and Analysis Center, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China.
None:
Isolating extracellular vesicles (EVs) from microvolume samples remains a major technical challenge, as conventional methods are often hampered by low yield, poor purity, and impracticality when processing trace volumes. Herein, we developed a dual-functionalized microfluidic platform (DSPE-Ti-Chip) that synergistically combines Ti4+ coordination for phosphate binding and 1,2-Distearoyl-sn-glycero-3-phosphorylethanolamine (DSPE) phospholipid probes for membrane insertion, enabling efficient capture of EVs from biofluids with volumes as low as 20 μL. The dual-affinity strategy proved superior, capturing twice as many EVs as chips with either ligand alone. Compared to ultracentrifugation (UC), the DSPE-Ti-Chip demonstrated significantly enhanced performance, improving the EV purity by 2.2 times and increasing EV yield by 2.5 times. Furthermore, the platform achieved an 86.9% recovery rate, representing a 5.2-fold improvement over UC, while reducing the processing time from 4 to 1 h. We applied this platform to isolate EVs from the culture medium of a human alveolar-capillary lung-on-a-chip model exposed to combustible cigarette smoke (CS) or electronic cigarette aerosols (ECA). Subsequent label-free quantitative proteomics identified 393 ± 13 proteins per sample group (n = 3), and comparative analysis revealed distinct proteomic signatures. CS-EVs were enriched in inflammatory and immune-related proteins like S100A8/A9, whereas ECA-EVs were more associated with extracellular matrix remodeling and cell adhesion. Our results demonstrate that the DSPE-Ti-Chip is a robust and efficient tool for high-quality EV isolation from limited samples, enabling downstream omics analysis and revealing divergent pathophysiological pathways induced by different aerosol exposures.
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