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Cytotoxic Efficacy of Photodynamic Therapy in Osteosarcoma Cells In Vitro
Published on: March 18, 2014
STAT3 inhibitor, cucurbitacin I, is a novel therapeutic agent for osteosarcoma
Toru Oi1, Kunihiro Asanuma1, Akihiko Matsumine1
1Department of Orthopedic Surgery, Mie University School of Medicine, Tsu, Mie 514-8507, Japan.
Abstract:
The development of clinical agents remains a costly and time-consuming process. Although identification of new uses of existing drugs has been recognized as a more efficient approach for drug discovery than development of novel drugs, little screening of drugs that might be used for a rare malignant tumor such as osteosarcoma (OS) has been performed. In this study, we attempted to identify new molecular targeted agents for OS by employing Screening Committee of Anticancer Drugs (SCADS) kits. To screen compounds for OS treatment, their effect on cell viability of the OS cell lines 143B, MG63, HOS, SAOS-2, and HUO9 were evaluated. Candidate drugs were narrowed down based on a global anti-proliferative effect against these five OS cell lines. After excluding cytotoxic compounds and compounds unsuitable for in vivo administration, cucurbitacin I was extracted. Cucurbitacin I has been found to have cytotoxic and anti-proliferative properties against several tumors through inhibition of signal transducer and activator of transcription 3 (STAT3) activation. Cucurbitacin I dose- and time-dependently inhibited the proliferation of all five OS cell lines. Following cucurbitacin I treatment, STAT3 was inactivated and analysis of Mcl-1, cleaved PARP and caspase-3 indicated apoptosis induction. Expression of cell cycle regulator proteins, such as phospho-cyclin D1, c-Myc and survivin, were suppressed. Finally, cucurbitacin I potently inhibited the tumor growth of human OS 143B cells in nude mice. Our in vitro and in vivo results suggest that STAT3 inhibition by cucurbitacin I will be an effective and new approach for the treatment of OS.
Insights
Cucurbitacin I effectively targets osteosarcoma (OS) by inhibiting signal transducer and activator of transcription 3 (STAT3) activation. This novel approach demonstrates potent anti-proliferative effects and tumor growth inhibition in preclinical models.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Drug discovery for rare cancers like osteosarcoma (OS) is challenging and costly.
- Repurposing existing drugs offers a more efficient alternative to developing novel therapeutics.
- Limited screening has focused on identifying new treatments for OS using existing drug compounds.
Purpose of the Study:
- To identify novel molecular targeted agents for osteosarcoma (OS) treatment.
- To evaluate the efficacy of compounds using the Screening Committee of Anticancer Drugs (SCADS) kits.
- To investigate the potential of cucurbitacin I as an OS therapeutic agent.
Main Methods:
- Screening of compounds for anti-proliferative effects on five OS cell lines (143B, MG63, HOS, SAOS-2, HUO9).
- Evaluation of cucurbitacin I's impact on cell viability, STAT3 activation, apoptosis markers (Mcl-1, cleaved PARP, caspase-3), and cell cycle regulators.
- In vivo assessment of cucurbitacin I's efficacy in inhibiting human OS 143B tumor growth in nude mice.
Main Results:
- Cucurbitacin I demonstrated dose- and time-dependent inhibition of proliferation across all tested OS cell lines.
- Treatment with cucurbitacin I led to STAT3 inactivation, apoptosis induction, and suppression of key cell cycle proteins.
- Cucurbitacin I significantly inhibited OS tumor growth in a preclinical mouse model.
Conclusions:
- Cucurbitacin I exhibits potent anti-cancer properties against osteosarcoma.
- STAT3 inhibition by cucurbitacin I represents a promising new therapeutic strategy for OS treatment.
- Further investigation into cucurbitacin I for OS therapy is warranted based on these findings.
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