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Updated: Sep 19, 2025

Evaluating the Angiogenetic Properties of Ovarian Cancer Stem-Like Cells using the Three-Dimensional Co-Culture System, NICO-1
Published on: December 5, 2020
Spatiotemporal Circadian Oscillator Manipulation for Enhanced Ovarian Cancer Therapy Using a Versatile Nanoplatform
Jiamin Lin1, Qiang Zhang1, Yanlin Xin1
1School of Medicine, Nanjing University of Chinese Medicine, Nanjing 210023, China.
Abstract:
Circadian rhythm (CR) disruption has been confirmed as a contributing factor to tumor progression. However, regulating circadian genes shows an inhibitory effect on ovarian tumor initiation and progression, which highlights the urgent necessity to regulate tumors' CR to understand their role in ovarian cancer (OC) therapy precisely. Herein, a novel near-infrared (NIR) light-controlled spatiotemporal strategy is presented, aiming to manipulate ovarian tumors' CR while enhancing the efficacy of chemotherapy agents. To achieve this strategy, a versatile nanoplatform (NPPEG-CS) that integrates the modified photothermal sensitizer IR-820 and a norcantharidin-platinum(IV) prodrug conjugate onto a cationic polyethylenimine (PEI) backbone coated with PEG-modified chondroitin sulfate (PEG-CS) for targeted delivery to ovarian tumors is designed. NPPEG-CS effectively diminishes the CR amplitude upon NIR illumination, demonstrating its potential for innovative cancer treatment strategies. Additionally, molecular analyses reveal that this disruption involves calcium-mediated influx, triggered by the photothermal properties of NPPEG-CS. When combined with chemotherapeutic agents, a disrupted clock can elevate tumor sensitivity to these drugs. This process effectively increases DNA-Pt adducts, reduces the activity of protein phosphatase 2A (PP2A), and promotes cell cycle arrest, synergistically amplifying DNA damage and inducing robust tumor apoptosis. The novel nanoparticle synergism offers innovative insights into harnessing CR as a therapeutic target for more effective cancer management.
Insights
Disrupting ovarian tumors' circadian rhythm (CR) with a novel nanoparticle enhances chemotherapy efficacy. This strategy, triggered by near-infrared light, offers a new approach for ovarian cancer (OC) treatment.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Circadian rhythm (CR) disruption contributes to tumor progression.
- Regulating CR shows inhibitory effects on ovarian tumor initiation and progression.
- Precise CR regulation is crucial for understanding ovarian cancer (OC) therapy.
Purpose of the Study:
- To present a novel near-infrared (NIR) light-controlled spatiotemporal strategy to manipulate ovarian tumors' CR.
- To enhance chemotherapy efficacy in OC by targeting CR.
- To develop a versatile nanoplatform for targeted delivery and CR manipulation.
Main Methods:
- Designed a nanoplatform (NPPEG-CS) integrating IR-820 and a platinum(IV) prodrug conjugate on a PEI backbone, coated with PEG-CS.
- Utilized NIR light to trigger photothermal properties of NPPEG-CS for CR disruption.
- Conducted molecular analyses to investigate CR disruption mechanisms and synergistic effects with chemotherapy.
Main Results:
- NPPEG-CS effectively diminished CR amplitude upon NIR illumination.
- CR disruption was mediated by calcium influx triggered by NPPEG-CS photothermal properties.
- Disrupted CR enhanced tumor sensitivity to chemotherapy, increasing DNA-Pt adducts, reducing PP2A activity, and promoting cell cycle arrest and apoptosis.
Conclusions:
- The novel nanoplatform offers a spatiotemporal strategy to manipulate tumor CR.
- Harnessing CR as a therapeutic target can synergistically enhance chemotherapy efficacy in ovarian cancer.
- This approach provides innovative insights for more effective cancer management.
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