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Updated: Nov 3, 2025

A Three-Dimensional Spheroid Model to Investigate the Tumor-Stromal Interaction in Hepatocellular Carcinoma
Published on: September 30, 2021
An in vitro model of tumor heterogeneity resolves genetic, epigenetic, and stochastic sources of cell state
Corey E Hayford1, Darren R Tyson2, C Jack Robbins2
1Chemical and Physical Biology Graduate Program, Vanderbilt University School of Medicine, Nashville, Tennessee, United States of America.
Abstract:
Tumor heterogeneity is a primary cause of treatment failure and acquired resistance in cancer patients. Even in cancers driven by a single mutated oncogene, variability in response to targeted therapies is well known. The existence of additional genomic alterations among tumor cells can only partially explain this variability. As such, nongenetic factors are increasingly seen as critical contributors to tumor relapse and acquired resistance in cancer. Here, we show that both genetic and nongenetic factors contribute to targeted drug response variability in an experimental model of tumor heterogeneity. We observe significant variability to epidermal growth factor receptor (EGFR) inhibition among and within multiple versions and clonal sublines of PC9, a commonly used EGFR mutant nonsmall cell lung cancer (NSCLC) cell line. We resolve genetic, epigenetic, and stochastic components of this variability using a theoretical framework in which distinct genetic states give rise to multiple epigenetic "basins of attraction," across which cells can transition driven by stochastic noise. Using mutational impact analysis, single-cell differential gene expression, and correlations among Gene Ontology (GO) terms to connect genomics to transcriptomics, we establish a baseline for genetic differences driving drug response variability among PC9 cell line versions. Applying the same approach to clonal sublines, we conclude that drug response variability in all but one of the sublines is due to epigenetic differences; in the other, it is due to genetic alterations. Finally, using a clonal drug response assay together with stochastic simulations, we attribute subclonal drug response variability within sublines to stochastic cell fate decisions and confirm that one subline likely contains genetic resistance mutations that emerged in the absence of drug treatment.
Insights
Tumor heterogeneity, driven by genetic and nongenetic factors, causes varied responses to targeted cancer therapies. Understanding these factors is key to overcoming treatment failure and acquired resistance in cancers like nonsmall cell lung cancer.
Area of Science:
- Oncology
- Cancer Biology
- Genetics
Background:
- Tumor heterogeneity significantly impacts cancer treatment outcomes, leading to drug resistance and relapse.
- While genetic alterations are known drivers, nongenetic factors are increasingly recognized for their role in cancer variability.
- Understanding the interplay of genetic and nongenetic factors is crucial for developing effective cancer therapies.
Purpose of the Study:
- To investigate the contributions of genetic, epigenetic, and stochastic factors to drug response variability in a model of tumor heterogeneity.
- To analyze variability in response to epidermal growth factor receptor (EGFR) inhibition in nonsmall cell lung cancer (NSCLC) cell lines.
Main Methods:
- Utilized a theoretical framework integrating genetic states, epigenetic "basins of attraction," and stochastic noise.
- Employed mutational impact analysis, single-cell differential gene expression, and Gene Ontology (GO) term correlations.
- Conducted clonal drug response assays and stochastic simulations.
Main Results:
- Observed significant variability in EGFR inhibition response among and within PC9 NSCLC cell line versions and sublines.
- Differentiated genetic, epigenetic, and stochastic components of drug response variability.
- Identified epigenetic differences as the primary driver of variability in most sublines, with genetic alterations in one subline.
- Confirmed stochastic cell fate decisions contribute to subclonal variability and identified potential pre-existing genetic resistance mutations.
Conclusions:
- Both genetic and nongenetic factors critically influence targeted drug response variability in cancer.
- Epigenetic plasticity and stochastic processes play substantial roles in tumor heterogeneity and treatment response.
- This study provides a framework for dissecting complex sources of drug resistance in cancer.
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