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Updated: Jan 29, 2026

Author Spotlight: Unveiling the Role of TMOD3 in Platinum Resistance and Immune Infiltration in Ovarian Cancer
Published on: August 2, 2024
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.
Abstract:
A long-standing challenge in the treatment of ovarian cancer is drug resistance to standard platinum-based chemotherapy. Recently, increasing attention has been drawn to the use of self-assembled metal-organic complexes as novel therapeutics for cancer treatment. However, high hydrophobicity that is often associated with these structures lowers their solubility and hinders their clinical translation. In this article, we present a proof-of-concept study of using nanoprecipitation to formulate the hydrophobic metal-organic cages and facilitate their use in treating chemoresistant ovarian cancer. The Pt6L4 Cage 1 is an octahedral cage formed by self-assembly of six 1,10-phenanthroline-Pt(II) centers and four 2,4,6-tris(4-pyridyl)-1,3,5-triazine ligands (L). Cage 1 is able to trigger DNA damage and exhibits promising in vitro potency against a panel of human ovarian cancer cell lines. However, due to the large portion of aromatic components, this cage structure has very limited solubility in cell culture media (<20μM). Notably, upon nanoformulation by using fluorescein (2) and a pegylated anionic polymer (3), the concentration of Cage 1 can reach up to 0.4 mM. Production of the nanoparticles of metal-organic cages (nMOC) is driven by the formation of the 1:1 host-guest complex of 1 and 2 in aqueous solution, which then form nanoprecipitation in presence of poly glutamic acid-b-poly ethylene glycol (3). The resulted nMOC are about 100 nm in diameter, and they serve as a delivery platform that slowly releases the therapeutic content. The use of fluorescein facilitates monitoring cell entry of nMOC and drug release using flow cytometry. Finally, comparing to cisplatin, the nMOC exhibit comparable in vitro efficacy against a panel of human cancer cell lines, and notably, it shows a much lower resistance factor against chemoresistant ovarian cancer cell lines.
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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