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Published on: September 19, 2018
Deciphering cellular states of innate tumor drug responses
Esther Graudens1, Virginie Boulanger, Cindy Mollard
1Array s/IMAGE, Genexpress, Functional Genomics and Systems Biology for Health, LGN-UMR 7091-CNRS and Pierre and Marie Curie University, Paris VI, Villejuif, France.
Background:
The molecular mechanisms underlying innate tumor drug resistance, a major obstacle to successful cancer therapy, remain poorly understood. In colorectal cancer (CRC), molecular studies have focused on drug-selected tumor cell lines or individual candidate genes using samples derived from patients already treated with drugs, so that very little data are available prior to drug treatment.
Results:
Transcriptional profiles of clinical samples collected from CRC patients prior to their exposure to a combined chemotherapy of folinic acid, 5-fluorouracil and irinotecan were established using microarrays. Vigilant experimental design, power simulations and robust statistics were used to restrain the rates of false negative and false positive hybridizations, allowing successful discrimination between drug resistance and sensitivity states with restricted sampling. A list of 679 genes was established that intrinsically differentiates, for the first time prior to drug exposure, subsequently diagnosed chemo-sensitive and resistant patients. Independent biological validation performed through quantitative PCR confirmed the expression pattern on two additional patients. Careful annotation of interconnected functional networks provided a unique representation of the cellular states underlying drug responses.
Conclusion:
Molecular interaction networks are described that provide a solid foundation on which to anchor working hypotheses about mechanisms underlying in vivo innate tumor drug responses. These broad-spectrum cellular signatures represent a starting point from which by-pass chemotherapy schemes, targeting simultaneously several of the molecular mechanisms involved, may be developed for critical therapeutic intervention in CRC patients. The demonstrated power of this research strategy makes it generally applicable to other physiological and pathological situations.
Insights
Researchers identified 679 genes that predict colorectal cancer (CRC) chemotherapy response before treatment. This discovery offers new avenues for developing targeted therapies to overcome innate tumor drug resistance.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Innate tumor drug resistance is a significant challenge in cancer therapy, particularly in colorectal cancer (CRC).
- Limited understanding exists regarding the molecular mechanisms of pre-treatment drug resistance.
- Previous studies often analyzed drug-selected cell lines or post-treatment patient samples.
Purpose of the Study:
- To identify molecular signatures predictive of innate drug resistance in colorectal cancer patients prior to chemotherapy.
- To establish a foundation for developing novel therapeutic strategies targeting drug resistance mechanisms.
Main Methods:
- Transcriptional profiling of clinical CRC samples using microarrays before chemotherapy exposure.
- Rigorous statistical analysis and experimental design to ensure reliable gene expression data.
- Quantitative PCR for independent validation of gene expression patterns.
Main Results:
- A distinct list of 679 genes was identified that differentiates chemo-sensitive from chemo-resistant colorectal cancer patients before treatment.
- These genes represent intrinsic molecular differences associated with treatment outcomes.
- Functional network analysis provided insights into the cellular states underlying drug responses.
Conclusions:
- Identified molecular interaction networks offer a basis for understanding in vivo innate drug resistance.
- Broad-spectrum cellular signatures can guide the development of combination chemotherapy strategies.
- The research methodology is applicable to other physiological and pathological contexts.