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Updated: Dec 10, 2025

Author Spotlight: Impact of Intergenic Interactions on Disease-Identifying Dark Biomarkers
Published on: March 1, 2024
Dynamic genome and transcriptional network-based biomarkers and drugs: precision in breast cancer therapy
Ioannis D Kyrochristos1,2, Demosthenes E Ziogas1,3, Dimitrios H Roukos1,2,4
1Centre for Biosystems and Genome Network Medicine, Ioannina University, Ioannina, Greece.
Abstract:
Despite remarkable progress in medium-term overall survival benefit in the adjuvant, neoadjuvant and metastatic settings, with multiple recent targeted drug approvals, acquired resistance, late relapse, and cancer-related death rates remain challenging. Integrated technological systems have been developed to overcome these unmet needs. The characterization of structural and functional noncoding genome elements through next-generation sequencing (NGS) systems, Hi-C and CRISPR/Cas9, as well as computational models, allows for whole genome and transcriptome analysis. Rapid progress in large-scale single-biopsy genome analysis has identified several novel breast cancer driver genes and oncotargets. The exploration of spatiotemporal tumor evolution has returned exciting while inconclusive data on dynamic intratumor heterogeneity (ITH) through multiregional NGS and single-cell DNA/RNA sequencing and circulating genomic subclones (cGSs) by serial circulating cell-free DNA NGS to predict and overcome intrinsic and acquired therapeutic resistance. This review discusses reliable breast cancer genome analysis data and focuses on two major crucial perspectives. The validation of ITH, cGSs, and intrapatient genetic/genomic heterogeneity as predictive biomarkers, as well as the valid discovery of novel oncotargets within patient-centric genomic trials, encouraging early drug development, could optimize primary and secondary therapeutic decision-making. A longer-term goal is to identify the individualized landscape of both coding and noncoding key mutations. This progress will enable the understanding of molecular mechanisms perturbating regulatory networks, shaping the pharmaceutical controllability of deregulated transcriptional biocircuits.
Insights
Advanced genomic analysis reveals breast cancer
Area of Science:
- Genomics
- Cancer Biology
- Precision Medicine
Background:
- Despite advances in targeted therapies for breast cancer, challenges persist including acquired resistance, late relapse, and mortality.
- Integrated genomic technologies are emerging to address these unmet clinical needs.
Purpose of the Study:
- To review current breast cancer genome analysis data.
- To focus on validating intratumor heterogeneity (ITH) and circulating genomic subclones (cGSs) as predictive biomarkers.
- To highlight the discovery of novel oncotargets for improved therapeutic decision-making.
Main Methods:
- Next-generation sequencing (NGS) for whole genome and transcriptome analysis.
- Hi-C and CRISPR/Cas9 for noncoding genome element characterization.
- Multiregional and single-cell sequencing for studying tumor evolution and intratumor heterogeneity (ITH).
- Circulating cell-free DNA NGS for identifying circulating genomic subclones (cGSs).
Main Results:
- Large-scale genomic analysis has identified novel breast cancer driver genes and oncotargets.
- Spatiotemporal tumor evolution studies provide insights into dynamic intratumor heterogeneity (ITH).
- Serial circulating cell-free DNA NGS enables prediction and potential overcoming of therapeutic resistance.
Conclusions:
- Validating ITH and cGSs as predictive biomarkers can optimize treatment strategies.
- Discovering novel oncotargets through patient-centric genomic trials can accelerate drug development.
- Identifying individualized mutation landscapes will elucidate molecular mechanisms and enhance pharmaceutical control of deregulated transcriptional circuits.
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