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Phenotype-driven precision oncology as a guide for clinical decisions one patient at a time
Shumei Chia1, Joo-Leng Low1, Xiaoqian Zhang1
1Genome Institute of Singapore, A*STAR, Cancer Therapeutics & Stratified Oncology, PerkinElmer-GIS Centre for Precision Oncology, 60 Biopolis Street, #02-01 Genome, Singapore, 138672, Singapore.
Abstract:
Genomics-driven cancer therapeutics has gained prominence in personalized cancer treatment. However, its utility in indications lacking biomarker-driven treatment strategies remains limited. Here we present a "phenotype-driven precision-oncology" approach, based on the notion that biological response to perturbations, chemical or genetic, in ex vivo patient-individualized models can serve as predictive biomarkers for therapeutic response in the clinic. We generated a library of "screenable" patient-derived primary cultures (PDCs) for head and neck squamous cell carcinomas that reproducibly predicted treatment response in matched patient-derived-xenograft models. Importantly, PDCs could guide clinical practice and predict tumour progression in two n = 1 co-clinical trials. Comprehensive "-omics" interrogation of PDCs derived from one of these models revealed YAP1 as a putative biomarker for treatment response and survival in ~24% of oral squamous cell carcinoma. We envision that scaling of the proposed PDC approach could uncover biomarkers for therapeutic stratification and guide real-time therapeutic decisions in the future.Treatment response in patient-derived models may serve as a biomarker for response in the clinic. Here, the authors use paired patient-derived mouse xenografts and patient-derived primary culture models from head and neck squamous cell carcinomas, including metastasis, as models for high-throughput screening of anti-cancer drugs.
Insights
This study introduces a phenotype-driven precision oncology approach using patient-derived primary cultures (PDCs) to predict cancer treatment response. PDCs accurately forecasted therapeutic outcomes and guided clinical decisions in head and neck cancers.
Area of Science:
- Oncology
- Genetics
- Biomarker Discovery
Background:
- Genomics-driven precision oncology is limited in cancers without established biomarkers.
- A new approach is needed to predict therapeutic response in diverse cancer types.
Purpose of the Study:
- To develop and validate a "phenotype-driven precision-oncology" strategy.
- To establish patient-derived primary cultures (PDCs) as predictive biomarkers for cancer therapeutics.
- To identify novel biomarkers for treatment stratification in head and neck cancers.
Main Methods:
- Generated "screenable" patient-derived primary cultures (PDCs) from head and neck squamous cell carcinomas.
- Validated PDC response prediction using matched patient-derived xenograft models.
- Conducted comprehensive "-omics" analysis on PDCs to identify biomarkers.
- Evaluated PDC utility in two n=1 co-clinical trials.
Main Results:
- PDCs accurately predicted treatment response in patient-derived xenograft models.
- PDCs guided clinical practice and predicted tumor progression in co-clinical trials.
- YAP1 was identified as a putative biomarker for treatment response and survival in oral squamous cell carcinoma.
Conclusions:
- Phenotype-driven precision oncology using PDCs is a viable strategy for therapeutic prediction.
- PDCs can serve as predictive biomarkers, guiding clinical decisions and uncovering novel therapeutic targets.
- Scaling the PDC approach holds promise for future biomarker discovery and real-time treatment stratification.
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