Related Experiment Video
Updated: Jun 12, 2025

Author Spotlight: Exploring Salidroside's Molecular Mechanisms in Breast Cancer Treatment
Published on: June 9, 2023
Disulfiram Upgrades the Radiosensitivity of Osteosarcoma by Enhancing Apoptosis and P53-Induced Cell Cycle Arrest
Qiujian Lian1, Fengmei Chen1, Zhilin Sha2
1Department of Orthopedics, The Third Affiliated Hospital (Eastern Hepatobiliary Surgery Hospital), Naval Medical University (Second Military Medical University), Shanghai 201805, China.
Abstract:
The prognosis of osteosarcoma has not been improved for decades. As radioresistance is one of the major reasons, effective radiotherapy sensitization drugs need to be discovered. HOS and K7M2 osteosarcoma cell lines were treated with disulfiram (DSF) and radiation to assess cell viability, proliferation, migration ability, apoptosis level, ROS and Ca2+ level, and cell cycle in vitro. A HOS-derived subcutaneous tumor mouse model was constructed to evaluate tumor growth after DSF combined with radiation, and the Tunel assay and immunohistochemistry of Ki67 were conducted. Western blot was used to evaluate the protein expression level. The IC50 and working concentration of DSF in osteosarcoma cell lines were ascertained. When combined with radiation, DSF effectively suppressed cell viability, proliferation, and migration, while enhancing apoptosis in osteosarcoma cells. The cell cycle postirradiation exhibited a downward shift in the G1 phase, but the addition of DSF counteracted this trend. The combination of DSF and radiation exhibited inhibitory effects on tumor growth in vivo, which was corroborated by Ki67 staining and Tunel assay. Western blot analysis revealed that DSF upregulated the expression of P53, P21, CDKN2C, BAX, and cleaved Caspase-3 while downregulating BCL2, CDK4/6, and CyclinD1 after irradiation. Our results document that DSF exerts its radiosensitization effects in vivo and in vitro, and is a valuable radiosensitizing drug option for osteosarcoma. The radiosensitization effect is mainly achieved by activating the apoptotic pathway and promoting cell cycle arrest induced by P53/P21 and CDKN2C after irradiation.
Insights
Disulfiram (DSF) enhances radiotherapy effectiveness in osteosarcoma by increasing apoptosis and promoting cell cycle arrest. This radiosensitization offers a promising new treatment strategy for osteosarcoma patients.
Area of Science:
- Oncology
- Radiotherapy
- Drug Discovery
Background:
- Osteosarcoma prognosis remains poor due to radioresistance.
- Novel radiotherapy sensitizers are crucial for improving treatment outcomes.
Purpose of the Study:
- To investigate the radiosensitizing potential of disulfiram (DSF) in osteosarcoma.
- To evaluate the efficacy of DSF combined with radiation in vitro and in vivo.
Main Methods:
- Osteosarcoma cell lines (HOS, K7M2) treated with DSF and radiation.
- In vivo studies using a HOS-derived subcutaneous tumor mouse model.
- Assays included cell viability, proliferation, apoptosis, cell cycle, ROS, Ca2+, Western blot, Ki67 staining, and Tunel assay.
Main Results:
- DSF combined with radiation suppressed osteosarcoma cell viability, proliferation, and migration, while enhancing apoptosis.
- In vivo, DSF and radiation inhibited tumor growth, confirmed by Ki67 and Tunel assays.
- DSF modulated key proteins involved in apoptosis (upregulating P53, P21, BAX, cleaved Caspase-3; downregulating BCL2) and cell cycle regulation (downregulating CDK4/6, CyclinD1).
Conclusions:
- Disulfiram demonstrates significant radiosensitization effects in osteosarcoma, both in vitro and in vivo.
- DSF is a potential radiosensitizing drug for osteosarcoma treatment.
- Radiosensitization is mediated by activating apoptosis and inducing cell cycle arrest via the P53/P21 and CDKN2C pathways.
Related Concept Videos
Abnormal Proliferation
DNA Damage can Stall the Cell Cycle
Targeted Cancer Therapies
There are several types of targeted therapies against...

