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Optimization of a Multiplex RNA-based Expression Assay Using Breast Cancer Archival Material
Published on: August 1, 2018
Comprehensive Mutation and Copy Number Profiling in Archived Circulating Breast Cancer Tumor Cells Documents
Costanza Paoletti1,2, Andi K Cani3,4,5, Jose M Larios1,2
1Breast Oncology Program of the University of Michigan Comprehensive Cancer Center, Ann Arbor, Michigan.
Abstract:
Addressing drug resistance is a core challenge in cancer research, but the degree of heterogeneity in resistance mechanisms in cancer is unclear. In this study, we conducted next-generation sequencing (NGS) of circulating tumor cells (CTC) from patients with advanced cancer to assess mechanisms of resistance to targeted therapy and reveal opportunities for precision medicine. Comparison of the genomic landscapes of CTCs and tissue metastases is complicated by challenges in comprehensive CTC genomic profiling and paired tissue acquisition, particularly in patients who progress after targeted therapy. Thus, we assessed by NGS somatic mutations and copy number alterations (CNA) in archived CTCs isolated from patients with metastatic breast cancer who were enrolled in concurrent clinical trials that collected and analyzed CTCs and metastatic tissues. In 76 individual and pooled informative CTCs from 12 patients, we observed 85% concordance in at least one or more prioritized somatic mutations and CNA between paired CTCs and tissue metastases. Potentially actionable genomic alterations were identified in tissue but not CTCs, and vice versa. CTC profiling identified diverse intra- and interpatient molecular mechanisms of endocrine therapy resistance, including loss of heterozygosity in individual CTCs. For example, in one patient, we observed CTCs that were either wild type for ESR1 (n = 5/32), harbored the known activating ESR1 p.Y537S mutation (n = 26/32), or harbored a novel ESR1 p.A569S (n = 1/32). ESR1 p.A569S was modestly activating in vitro, consistent with its presence as a minority circulating subclone. Our results demonstrate the feasibility and potential clinical utility of comprehensive profiling of archived fixed CTCs. Tissue and CTC genomic assessment are complementary, and precise combination therapies will likely be required for effective targeting in advanced breast cancer patients.Significance: These findings demonstrate the complementary nature of genomic profiling from paired tissue metastasis and circulating tumor cells from patients with metastatic breast cancer. Cancer Res; 78(4); 1110-22. ©2017 AACR.
Insights
Genomic profiling of circulating tumor cells (CTCs) and tissue metastases reveals diverse resistance mechanisms in advanced breast cancer. Comprehensive CTC analysis offers clinical utility, complementing tissue assessment for precision medicine.
Area of Science:
- Genomics and Molecular Biology
- Cancer Research
- Precision Medicine
Background:
- Drug resistance in cancer is a significant challenge, with unclear heterogeneity in resistance mechanisms.
- Assessing resistance mechanisms requires comprehensive genomic profiling of circulating tumor cells (CTCs) and tissue metastases.
- Paired tissue acquisition and CTC genomic profiling present challenges, especially in patients progressing on targeted therapy.
Purpose of the Study:
- To assess mechanisms of resistance to targeted therapy in advanced cancer using next-generation sequencing (NGS) of CTCs.
- To reveal opportunities for precision medicine by analyzing genomic landscapes of CTCs and tissue metastases.
- To evaluate the feasibility and clinical utility of comprehensive profiling of archived fixed CTCs.
Main Methods:
- Conducted NGS of archived circulating tumor cells (CTCs) from patients with metastatic breast cancer.
- Assessed somatic mutations and copy number alterations (CNAs) in paired CTCs and metastatic tissues.
- Analyzed 76 individual and pooled informative CTCs from 12 patients.
Main Results:
- Observed 85% concordance in prioritized somatic mutations and CNAs between paired CTCs and tissue metastases.
- Identified potentially actionable genomic alterations in both tissue and CTCs, with unique findings in each.
- Revealed diverse intra- and interpatient molecular mechanisms of endocrine therapy resistance via CTC profiling, including novel ESR1 mutations.
Conclusions:
- Comprehensive profiling of archived fixed CTCs is feasible and holds potential clinical utility.
- Genomic assessment of tissue and CTCs are complementary approaches.
- Precise combination therapies are likely necessary for effective targeting in advanced breast cancer.

