4.6 Article

Label-Free Surface Protein Profiling of Extracellular Vesicles by an Electrokinetic Sensor

期刊

ACS SENSORS
卷 4, 期 5, 页码 1399-1408

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acssensors.9b00418

关键词

extracellular vesicles; electrokinetic effect; biosensor; label-free; protein profiling; cancer

资金

  1. Erling Persson Family Foundation
  2. Swedish Research Council [621-2014-5591]
  3. Swedish Cancer Society [CAN 2015/401, CAN 2018/597]
  4. Stockholm Cancer Society [171123, 161283, 154102, 174093]
  5. Stockholm County Council [20160287, 20180404]
  6. Karolinska FOUU
  7. VR-Med
  8. SSF-IRC

向作者/读者索取更多资源

Small extracellular vesicles (sEVs) generated from the endolysosomal system, often referred to as exosomes, have attracted interest as a suitable biomarker for cancer diagnostics, as they carry valuable biological information and reflect their cells of origin. Herein, we propose a simple and inexpensive electrical method for label-free detection and profiling of sEVs in the size range of exosomes. The detection method is based on the electrokinetic principle, where the change in the streaming current is monitored as the surface markers of the sEVs interact with the affinity reagents immobilized on the inner surface of a silica microcapillary. As a proof-of-concept, we detected sEVs derived from the non-small-cell lung cancer (NSCLC) cell line H1975 for a set of representative surface markers, such as epidermal growth factor receptor (EGFR), CD9, and CD63. The detection sensitivity was estimated to be similar to 175000 sEVs, which represents a sensor surface coverage of only 0.04%. We further validated the ability of the sensor to measure the expression level of a membrane protein by using sEVs displaying artificially altered expressions of EGFR and CD63, which were derived from NSCLC and human embryonic kidney (HEK) 293T cells, respectively. The analysis revealed that the changes in EGFR and CD63 expressions in sEVs can be detected with a sensitivity in the order of 10% and 3%, respectively, of their parental cell expressions. The method can be easily parallelized and combined with existing microfluidic-based EV isolation technologies, allowing for rapid detection and monitoring of sEVs for cancer diagnosis.

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