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Updated: Feb 28, 2026

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Augmentation of the anticancer activity of CYT997 in human prostate cancer by inhibiting Src activity
Yong Teng1,2,3, Yafei Cai4, Wenhu Pi5,6
1Department of Oral Biology, Augusta University, Augusta, GA, 30912, USA. yteng@augusta.edu.
Background:
Abnormalities of tubulin polymerization and microtubule assembly are often seen in cancer, which make them very suitable targets for the development of therapeutic approach against rapidly dividing and aggressive cancer cells. CYT997 is a novel microtubule-disrupting agent with anticancer activity in multiple cancer types including prostate cancer. However, the molecular mechanisms of action of CYT997 in prostate cancer have not been well characterized.
Methods:
Src knockdown cells were achieved by lentiviral-mediated interference. The drug effects on cell proliferation were measured by MTS. The drug effects on cell viability and death were determined by Cell Titer-Glo® Luminescent cell viability kit and flow cytometry with Zombie Aqua™ staining. The drug effects on apoptosis were assessed by Cell Death Detection Elisa kit and Western blot with a cleaved PARP antibody. The drug effects on cell invasion were examined by Matrigel-coated Boyden chambers. Oxidative stress was detected by DCFH-DA staining and electrochemical biosensor. Mouse models generated by subcutaneous or intracardiac injection were used to investigate the in vivo drug efficacy in tumor growth and metastasis.
Results:
CYT997 effectively inhibited proliferation, survival, and invasion of prostate cancer cells via blocking multiple oncogenic signaling cascades but not the Src pathway. Inhibition of Src expression by small hairpin RNA or inactivation of Src by dasatinib increased the CYT997-induced cytotoxicity of in vitro. Moreover, the combination of dasatinib and CYT997 exhibited a superior inhibitory effect on tumor growth and metastasis compared with either of the drugs alone.
Conclusion:
Our findings demonstrate that blockage of Src augments the anticancer effect of CYT997 on prostate cancer and suggest that co-treatment of dasatinib and CYT997 may represent an effective therapeutic regimen for limiting prostate cancer.
Insights
Combining dasatinib with CYT997 enhances its anticancer effects in prostate cancer. This combination therapy shows superior inhibition of tumor growth and metastasis, offering a promising treatment strategy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Microtubule-targeting agents are crucial in cancer therapy due to abnormalities in tubulin polymerization in cancer cells.
- CYT997 is a novel microtubule-disrupting agent with demonstrated anticancer activity.
- The precise molecular mechanisms of CYT997 in prostate cancer remain incompletely understood.
Purpose of the Study:
- To elucidate the molecular mechanisms of CYT997 in prostate cancer.
- To investigate the role of the Src pathway in CYT997's efficacy.
- To evaluate the synergistic potential of combining CYT997 with Src inhibition.
Main Methods:
- Prostate cancer cell lines were treated with CYT997, and effects on proliferation, viability, apoptosis, and invasion were assessed.
- Src knockdown was achieved using lentiviral-mediated interference.
- In vivo efficacy was evaluated in mouse models of prostate cancer growth and metastasis.
Main Results:
- CYT997 inhibited prostate cancer cell proliferation, survival, and invasion by targeting oncogenic signaling pathways, independent of the Src pathway.
- Inhibition or inactivation of Src significantly enhanced CYT997-induced cytotoxicity.
- Combined treatment with dasatinib (a Src inhibitor) and CYT997 demonstrated superior inhibition of tumor growth and metastasis in vivo.
Conclusions:
- Blocking the Src pathway potentiates the anticancer effects of CYT997 in prostate cancer.
- Co-treatment with dasatinib and CYT997 represents a potentially effective therapeutic strategy for prostate cancer.
- This combination warrants further clinical investigation for prostate cancer treatment.
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