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Flow-electricity coupling fields enhance microfluidic platforms for efficient exosome isolation.

Tao HuWenhu HanYuxuan ZhouWeilong TuXiao LiZhonghua Ni
Published in: Analytical methods : advancing methods and applications (2024)
Recently, exosomes have emerged as important biomarkers for cancer diagnosis, playing a significant role in disease diagnosis. Consequently, efficient isolation of exosomes from complex body fluids is now a critical focus in clinical research. We have designed and fabricated an exosome separation chip, leveraging the synergies of flow and electric fields through 3D printing technology. This approach harnesses the combined strengths of both fields, substantially enhancing separation efficiency and purity. This also effectively reduced the voltage required to form an electric field (from 120 V down to 10 V), minimizing the risk of Joule heating, thereby preserving the structural integrity and biological activity of the exosomes. Compared with the standard exosome separation method of ultracentrifugation (UC), our chip offers numerous benefits: it is cost-effective (under 50 RMB), boasts a high recovery rate (64.8%) and high purity (almost 100%), achieves remarkable separation efficiency (within 30 minutes), and is straightforward to operate. Moreover, since an unmarked separation method is used, the separated exosomes can be directly used for downstream detection and analysis, which has certain practicality for future clinical research and application.
Keyphrases
  • mesenchymal stem cells
  • liquid chromatography
  • stem cells
  • high throughput
  • circulating tumor cells
  • mass spectrometry
  • squamous cell carcinoma
  • current status
  • squamous cell
  • lymph node metastasis