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Updated: Jan 19, 2026

Implantation and Monitoring by PET/CT of an Orthotopic Model of Human Pleural Mesothelioma in Athymic Mice
Published on: December 21, 2019
Translating mesothelioma molecular genomics and dependencies into precision oncology-based therapies
Trista K Hinz1, Lynn E Heasley1
1Department of Craniofacial Biology, University of Colorado Anschutz Medical Campus, Aurora, CO 80045, United States.
Abstract:
Malignant pleural mesothelioma (MPM) is a rare, yet lethal asbestos-induced cancer and despite marked efforts to reduce occupational exposure, the incidence has not yet significantly declined. Since 2003, combined treatment with a platinum-based agent and pemetrexed has been the first-line therapy and no effective or approved second-line treatments have emerged. The seemingly slow advance in developing new MPM treatments does not appear to be related to a low level of clinical and pre-clinical research activity. Rather, we suggest that a key hurdle in successfully translating basic discovery into novel MPM therapeutics is the underlying assumption that as a rare cancer, it will also be molecularly and genetically homogeneous. In fact, lung adenocarcinoma and melanoma only benefitted from precision oncology upon full appreciation of the high degree of molecular heterogeneity inherent in these cancers, especially regarding the diversity of oncogenic drivers. Herein, we consider the recent explosion of molecular and genetic information that has become available regarding MPM and suggest ways in which the unfolding landscape may guide identification of novel therapeutic vulnerabilities within subsets of MPM that can be targeted in a manner consistent with the tenets of precision oncology.
Insights
Malignant pleural mesothelioma (MPM) research is advancing, but new treatments lag. Understanding MPM
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Malignant pleural mesothelioma (MPM) is a rare, lethal asbestos-induced cancer.
- Current first-line treatment (platinum-based agent and pemetrexed) lacks effective second-line options.
- Limited progress in novel MPM therapeutics may stem from assuming molecular homogeneity.
Purpose of the Study:
- To explore the impact of molecular heterogeneity on MPM treatment.
- To identify novel therapeutic vulnerabilities in MPM subsets.
- To align MPM treatment strategies with precision oncology principles.
Main Methods:
- Review of recent molecular and genetic information on MPM.
- Analysis of molecular heterogeneity in MPM.
- Comparison with precision oncology successes in other cancers.
Main Results:
- MPM exhibits significant molecular and genetic heterogeneity.
- This heterogeneity presents challenges but also opportunities for targeted therapies.
- Precision oncology approaches are applicable to MPM.
Conclusions:
- The assumption of MPM homogeneity hinders therapeutic development.
- Understanding MPM's molecular diversity is crucial for advancing precision oncology.
- Targeting specific MPM subsets based on molecular profiles can lead to novel treatments.
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