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Published on: July 25, 2020
Extrachromosomal DNA in Solid Tumors-Landscape, Immune Effects, and Resistance to Targeted Therapy
Omar Badran1,2, Siraj Attarya3
1Department of Oncology, Emek Medical Center, Afula, Israel.
Abstract:
Extrachromosomal DNA (ecDNA) constitutes a principal factor in the amplification of oncogenes and the progression of tumors in solid malignancies. This review synthesizes emerging mechanistic, genomic, and immunologic evidence across multiple tumor types, including glioblastoma, lung, breast, gastrointestinal, hepatobiliary, urothelial, prostate, gynecologic, pediatric, and head-and-neck cancers, with the goal of clarifying the role of ecDNA in immune escape and therapy resistance and outlining its translational implications for precision oncology. ecDNA comprises substantial acentromeric circular elements that serve as transcriptional hubs, modulate enhancer-promoter interactions, and undergo dynamic copy-number cycling, thereby fostering intratumoral heterogeneity and resistance to therapy. Recurrent oncogenic cargos, including epidermal growth factor receptor (EGFR), v-myc avian myelocytomatosis viral oncogene homolog (MYC), erb-b2 receptor tyrosine kinase 2, also known as human epidermal growth factor receptor 2 (ERBB2/HER2), and cyclin D1 (CCND1), are frequently located in ecDNA. They can interconvert with intrachromosomal homogeneously staining regions (HSRs) under treatment pressure. Emerging evidence links ecDNA to an immune-cold phenotype, characterized by downregulation of antigen presentation and decreased responsiveness to immune checkpoint inhibitors. We further emphasize diagnostic and translational methodologies that incorporate ecDNA detection through liquid biopsy and the spatial mapping of tumor topology. Finally, we propose a comprehensive clinical implementation framework that integrates ecDNA profiling, longitudinal monitoring, and immune microenvironment assessment to guide precision therapy. Gaining a deeper understanding of ecDNA biology has the potential to ultimately transform it from merely a prognostic biomarker into a targetable element within cancer therapy.
Insights
Extrachromosomal DNA (ecDNA) drives cancer progression and therapy resistance by amplifying oncogenes. Targeting ecDNA offers new precision oncology strategies, potentially transforming it into a therapeutic target beyond a biomarker.
Area of Science:
- Oncology
- Genomics
- Immunology
Background:
- Extrachromosomal DNA (ecDNA) is crucial in oncogene amplification and tumor progression in solid tumors.
- ecDNA features acentromeric circular elements that act as transcriptional hubs and modulate gene expression.
Purpose of the Study:
- To review mechanistic, genomic, and immunologic evidence on ecDNA's role in cancer.
- To clarify ecDNA's involvement in immune escape and therapy resistance.
- To outline ecDNA's translational implications for precision oncology.
Main Methods:
- Synthesis of emerging evidence across multiple cancer types (glioblastoma, lung, breast, etc.).
- Analysis of ecDNA's genomic characteristics, including oncogenic cargos (EGFR, MYC, HER2) and copy-number cycling.
- Review of ecDNA's link to immune phenotypes and diagnostic/translational methodologies.
Main Results:
- ecDNA promotes intratumoral heterogeneity and therapy resistance.
- Recurrent oncogenes are frequently found on ecDNA, interconverting with HSRs under treatment.
- ecDNA is associated with an immune-cold phenotype, reducing responsiveness to immunotherapy.
Conclusions:
- ecDNA is a key driver of tumor progression, immune evasion, and treatment resistance.
- Liquid biopsy and spatial mapping are emerging methods for ecDNA detection and analysis.
- Integrating ecDNA profiling into clinical practice can guide precision therapy and potentially target ecDNA itself.
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