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Nanodiamonds inhibit the proliferation and migration of endothelial cells in a tumor/endothelial cells co-culture microfluidic system

  • Qingyue Guo
  • , Lei Li*
  • , Guanyue Gao
  • , Qi Zhao
  • , Xia Huang
  • , Hao Wang
  • , Bingxin Liu
  • , Jinfang Zhi*
  • *Corresponding author for this work
    • CAS - Technical Institute of Physics and Chemistry
    • University of Chinese Academy of Sciences
    • Peking University Third Hospital

    Research output: Contribution to journalArticlepeer-review

    8 Citations (Scopus)

    Abstract

    The effect of nanoparticles on co-cultured tumor and endothelial cells has not been consistently elucidated. To address this question, a microfluidic chip for the co-culture of tumor and endothelial cells is fabricated herein. Human umbilical vein endothelial cells (HUVECs) and human cervical cancer cells (Hela) are respectively cultured in the upper and lower chambers of the chip, and the culture medium with carboxylated nanodiamonds (NDs) is applied to HUVECs by perfusion. The results show that, compared to the individually cultured HUVECs, the HUVECs co-cultured with Hela exhibit cancerous characteristics, with increased leakiness, migration, and proliferation. It is also found that, while the presence of NDs can lead to increased endothelial permeability, the migration and proliferation of the co-cultured HUVECs are reduced, and the co-cultured HUVECs are hindered, to some extent, from becoming cancerous. The results of gene analysis also prove that NDs can inhibit the proliferation of HUVECs by significantly down-regulating the vascular endothelial growth factor (VEGF) gene expression. The mechanism of suppressing tumor growth by inhibiting tumor vascular proliferation was also demonstrated in-vivo using a tumor-bearing mouse model.

    Original languageEnglish
    Article number118671
    JournalCarbon
    Volume218
    Early online date28 Nov 2023
    DOIs
    Publication statusPublished - 31 Jan 2024

    Keywords

    • Cell migration
    • Cell proliferation
    • Co-culture microfluidic system
    • Co-cultured tumor/endothelial cells
    • Endothelial permeability
    • Nanodiamonds (NDs)

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