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Targeting Tyrosine Kinases in Ovarian Cancer: Small Molecule Inhibitor and Monoclonal Antibody, Where Are We Now?
Aimee Rendell1,2, Isobel Thomas-Bland1,2, Lee McCuish1,2
1Curtin Medical School, Faculty of Health Sciences, Curtin University, Perth, WA 6102, Australia.
Abstract:
Ovarian cancer is one of the most lethal gynaecological malignancies worldwide. Despite high success rates following first time treatment, this heterogenous disease is prone to recurrence. Oncogenic activity of receptor tyrosine kinases is believed to drive the progression of ovarian cancer. Here we provide an update on the progress of the therapeutic targeting of receptor tyrosine kinases in ovarian cancer. Broadly, drug classes that inhibit tyrosine kinase/pathways can be classified as small molecule inhibitors, monoclonal antibodies, or immunotherapeutic vaccines. Small molecule inhibitors tested in clinical trials thus far include sorafenib, sunitinib, pazopanib, tivantinib, and erlotinib. Monoclonal antibodies include bevacizumab, cetuximab, pertuzumab, trastuzumab, and seribantumab. While numerous trials have been carried out, the results of monotherapeutic agents have not been satisfactory. For combination with chemotherapy, the monoclonal antibodies appear more effective, though the efficacy is limited by low frequency of target alteration and a lack of useful predictive markers for treatment stratification. There remain critical gaps for the treatment of platinum-resistant ovarian cancers; however, platinum-sensitive tumours may benefit from the combination of tyrosine kinase targeting drugs and PARP inhibitors. Immunotherapeutics such as a peptide B-cell epitope vaccine and plasmid-based DNA vaccine have shown some efficacy both as monotherapeutic agents and in combination therapy, but require further development to validate current findings. In conclusion, the tyrosine kinases remain attractive targets for treating ovarian cancers. Future development will need to consider effective drug combination, frequency of target, and developing predictive biomarker.
Insights
Targeting receptor tyrosine kinases offers promise for ovarian cancer treatment. Combination therapies, particularly with PARP inhibitors for platinum-sensitive disease, show potential, but further research into biomarkers and drug combinations is crucial.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Ovarian cancer is a leading cause of gynecological cancer deaths globally.
- Despite initial treatment success, ovarian cancer frequently recurs due to its heterogeneous nature.
- Receptor tyrosine kinases are implicated in driving ovarian cancer progression.
Purpose of the Study:
- To review the therapeutic targeting of receptor tyrosine kinases in ovarian cancer.
- To update on the progress of various drug classes and their clinical applications.
- To identify gaps and future directions in ovarian cancer treatment.
Main Methods:
- Review of clinical trials involving small molecule inhibitors, monoclonal antibodies, and immunotherapeutic vaccines.
- Analysis of monotherapy and combination therapy outcomes.
- Evaluation of treatment efficacy in platinum-resistant and platinum-sensitive ovarian cancers.
Main Results:
- Monotherapies targeting tyrosine kinases have shown limited success.
- Monoclonal antibodies combined with chemotherapy demonstrate improved efficacy but are hindered by target alteration frequency and lack of predictive markers.
- Immunotherapeutics show some promise but require further validation.
- Combination of tyrosine kinase inhibitors and PARP inhibitors may benefit platinum-sensitive ovarian cancer.
Conclusions:
- Receptor tyrosine kinases remain significant therapeutic targets for ovarian cancer.
- Future strategies must focus on effective drug combinations and the development of predictive biomarkers.
- Addressing platinum-resistant disease requires further investigation.
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