4.8 Article

The Architecture and Function of Monoclonal Antibody-Functionalized Mesoporous Silica Nanoparticles Loaded with Mifepristone: Repurposing Abortifacient for Cancer Metastatic Chemoprevention

Journal

SMALL
Volume 12, Issue 19, Pages 2595-2608

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.201600550

Keywords

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Funding

  1. Ministry of Science and Technology of China [2015CB931804]
  2. Natural Science Foundation of China [81571802, U1505225, 81273548]
  3. Natural Science Foundation of Fujian Province [2016J06020]
  4. Fujian Development and Reform Commission Project [829054(2014), 829054(168)]
  5. Technology Development Foundation of Fuzhou University [2013-XQ-8, 2014-XY-7]
  6. American Association of Pharmaceutical Scientists Foundation

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The circulating tumor cells (CTCs) existing in cancer survivors are considered the root cause of cancer metastasis. To prevent the devastating metastasis cascade from initiation, we hypothesize that a biodegradable nanomaterial loaded with the abortifacient mifepristone (MIF) and conjugated with the epithelial cell adhesion molecule antibody (aEpCAM) may serve as a safe and effective cancer metastatic preventive agent by targeting CTCs and preventing their adhesion-invasion to vascular intima. It is demonstrated that MIF-loaded mesoporous silica nanoparticles (MSN) coated with aEpCAM (aE-MSN-M) can specifically target and bind colorectal cancer cells in either cell medium or blood through EpCAM recognition proven by quantitative flow cytometric detection and free aEpCAM competitive assay. The specific binding results in downregulation of the captured cells and drives them into G0/G1 phase primarily attributed to the effect of aEpCAM. The functional nanoparticles significantly inhibit the heteroadhesion between cancer cells and endothelial cells, suggesting the combined inhibition effects of aEpCAM and MIF on E-selectin and ICAM-1 expression. The functionalized nanoparticles circulate in mouse blood long enough to deliver MIF and inhibit lung metastasis. The present proof-of-concept study shows that the aE-MSN-M can prevent cancer metastasis by restraining CTC activity and their adhesion-invasion to vascular intima.

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