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Updated: Apr 14, 2026

Patient-Derived Tumor Explants As a "Live" Preclinical Platform for Predicting Drug Resistance in Patients
Published on: February 7, 2021
A tumor deconstruction platform identifies definitive end points in the evaluation of drug responses
Abstract:
Tumor heterogeneity and the presence of drug-sensitive and refractory populations within the same tumor are almost never assessed in the drug discovery pipeline. Such incomplete assessment of drugs arising from spatial and temporal tumor cell heterogeneity reflects on their failure in the clinic and considerable wasted costs in the drug discovery pipeline. Here we report the derivation of a flow cytometry-based tumor deconstruction platform for resolution of at least 18 discrete tumor cell fractions. This is achieved through concurrent identification, quantification and analysis of components of cancer stem cell hierarchies, genetically instable clones and differentially cycling populations within a tumor. We also demonstrate such resolution of the tumor cytotype to be a potential value addition in drug screening through definitive cell target identification. Additionally, this real-time definition of intra-tumor heterogeneity provides a convenient, incisive and analytical tool for predicting drug efficacies through profiling perturbations within discrete tumor cell subsets in response to different drugs and candidates. Consequently, possible applications in informed therapeutic monitoring and drug repositioning in personalized cancer therapy would complement rational design of new candidates besides achieving a re-evaluation of existing drugs to derive non-obvious combinations that hold better chances of achieving remission.
Insights
This study introduces a flow cytometry platform to analyze tumor heterogeneity, identifying over 18 cell fractions. This approach aids in drug discovery by revealing drug-sensitive and resistant cells for better cancer therapy.
Area of Science:
- Oncology
- Biotechnology
- Drug Discovery
Background:
- Tumor heterogeneity, including drug-sensitive and refractory cells, is often unassessed in drug discovery.
- This oversight contributes to clinical trial failures and increased drug development costs.
Purpose of the Study:
- To develop a flow cytometry-based platform for deconstructing tumors into discrete cell fractions.
- To enable comprehensive analysis of intra-tumor heterogeneity for improved drug discovery and personalized cancer therapy.
Main Methods:
- Derivation of a flow cytometry platform capable of resolving at least 18 discrete tumor cell fractions.
- Concurrent identification, quantification, and analysis of cancer stem cell hierarchies, genetically unstable clones, and differentially cycling populations.
Main Results:
- Demonstrated the platform's ability to resolve intra-tumor cytotype with high precision.
- Showcased the value of this resolution in drug screening through definitive cell target identification.
Conclusions:
- Real-time definition of intra-tumor heterogeneity is a valuable tool for predicting drug efficacy.
- Applications include informed therapeutic monitoring, drug repositioning, and rational design of novel cancer therapeutics.
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