Nanoparticles of Metal-Organic Cages Overcoming Drug Resistance in Ovarian Cancer

Han Wang1, Zihan Qiu1, He Liu2

  • 1Department of Chemistry and Biochemistry, Integrated Sciences Building, Kent State University, Kent, OH, United States.

Frontiers in Chemistry
|February 19, 2019
PubMed

Insights

Researchers developed nanoparticles of metal-organic cages (nMOC) to overcome platinum drug resistance in ovarian cancer. These nMOCs show comparable efficacy to cisplatin and significantly lower resistance in chemoresistant cell lines.

Area of Science:

  • Supramolecular Chemistry
  • Nanomedicine
  • Cancer Therapeutics

Background:

  • Drug resistance to platinum-based chemotherapy is a major challenge in ovarian cancer treatment.
  • Hydrophobic metal-organic complexes show promise for cancer therapy but suffer from poor solubility.
  • Nanoprecipitation offers a method to formulate hydrophobic metal-organic cages for improved delivery.

Purpose of the Study:

  • To develop a nanoformulation strategy for hydrophobic metal-organic cages (MOCs).
  • To evaluate the efficacy of the nanoformulated MOCs against chemoresistant ovarian cancer.
  • To establish a proof-of-concept for using MOCs as novel cancer therapeutics.

Main Methods:

  • Self-assembly of a Pt6L4 octahedral cage (Cage 1) from Pt(II) centers and pyridyl-triazine ligands.
  • Nanoformulation of Cage 1 using fluorescein and a pegylated anionic polymer via nanoprecipitation.
  • Characterization of the resulting nanoparticles of metal-organic cages (nMOCs) and assessment of their in vitro efficacy and drug release.

Main Results:

  • Nanoformulation significantly increased the solubility of Cage 1 from <20μM to 0.4mM.
  • The resulting nMOCs are approximately 100 nm in diameter and act as a drug delivery platform.
  • nMOCs demonstrated comparable in vitro efficacy to cisplatin and a significantly lower resistance factor in chemoresistant ovarian cancer cell lines.

Conclusions:

  • Nanoprecipitation is an effective method for formulating hydrophobic metal-organic cages.
  • The developed nMOCs show potential as a therapeutic strategy for chemoresistant ovarian cancer.
  • Fluorescein-loaded nMOCs allow for monitoring of cellular uptake and drug release.

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