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Identifying patients eligible for PARP inhibitor treatment: from NGS-based tests to 3D functional assays
Pierre-Marie Morice1,2, Elodie Coquan1,2,3,4, Louis-Bastien Weiswald1,2,5
1Normandie University, UNICAEN, INSERM U1086 ANTICIPE (Interdisciplinary Research Unit for Cancers Prevention and Treatment), BioTICLA Team (Biology and Innovative Therapeutics for Ovarian Cancers), Caen, France.
Abstract:
Within the past few years, poly (ADP-ribose) polymerase inhibitors (PARPi) have been added to the standard of care for cancer patients, mainly for those exhibiting specific genomic alterations in the homologous recombination (HR) pathway. Until now, patients who are eligible to receive PARPi have been identified using next-generation sequencing (NGS) of gene panels. However, NGS analyses do have some limitations, with a subset of patients with negative NGS-based results can exhibit a clinical benefit, responding positively to PARPi, despite the failure to detect dynamic and predictive biomarkers such as mutated BRCA1/2 genes. Furthermore, the sequencing of initial tumour does not allow to detect reversions or secondary mutations that can restore proficient HR and lead to PARPi resistance. Therefore, it is crucial to better identify patients who are likely to benefit from PARPi treatment. In this context, tumour models such as patient-derived xenografts or tumour-derived organoids could help to guide clinicians in their decision making as these models accurately mimic phenotypic and genetic tumour heterogeneity, and could reflect treatment response in an integrative manner. In this Perspective article, we provide an overview of the currently available NGS-based tests that enable the identification of patients who might benefit from PARPi, and outline breakthroughs and discoveries to expand this selection using 3D functional assays. Combining NGS with functional assays could facilitate the efficient identification of patients, thereby improving patient survival.
Insights
Poly (ADP-ribose) polymerase inhibitors (PARPi) show promise for cancer patients. Combining next-generation sequencing (NGS) with 3D functional assays can improve patient selection for PARPi therapy.
Area of Science:
- Oncology
- Genomics
- Cancer Therapeutics
Background:
- Poly (ADP-ribose) polymerase inhibitors (PARPi) are standard care for specific cancer patients.
- Current patient selection relies on next-generation sequencing (NGS) of gene panels.
- NGS has limitations in detecting dynamic biomarkers and predicting PARPi resistance.
Purpose of the Study:
- To review current NGS-based tests for identifying patients eligible for PARPi.
- To explore the potential of 3D functional assays to expand PARPi patient selection.
- To highlight the benefits of combining NGS with functional assays for improved treatment outcomes.
Main Methods:
- Overview of existing NGS-based diagnostic tests for PARPi eligibility.
- Discussion of patient-derived xenografts and tumor-derived organoids as predictive models.
- Exploration of 3D functional assays for assessing homologous recombination (HR) proficiency.
- Analysis of limitations in current NGS approaches for dynamic biomarker detection.
Main Results:
- NGS fails to identify all patients who benefit from PARPi, missing dynamic biomarkers.
- Tumor heterogeneity and secondary mutations can lead to PARPi resistance, undetectable by initial NGS.
- 3D functional assays offer a complementary approach to assess HR status and predict treatment response.
Conclusions:
- Combining NGS with 3D functional assays can enhance the identification of patients likely to benefit from PARPi.
- This integrated approach can overcome limitations of NGS alone, improving treatment efficacy.
- Improved patient selection through combined methods has the potential to significantly enhance patient survival.
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