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Multifaceted interactions between lncRNA-associated ceRNA networks and small molecules in triple-negative breast
Ayşe Hale Alkan1, Demet Cansaran-Duman1
1Ankara University, Biotechnology Institute, Keçiören, Ankara 06135, Turkey.
Abstract:
Triple Negative Breast Cancer (TNBC) is the most aggressive subtype of breast cancer, marked by intrinsic and acquired chemoresistance and a lack of response to endocrine therapy and chemotherapy. This necessitates the development of novel, safe, and cost-effective treatment strategies. Recent advances include small molecules, drug repositioning, dual-targeting agents, combinatorial therapies, and splicing inhibitors. Comprehensive molecular profiling, including transcriptomic comparisons between primary and secondary tumors, is crucial for identifying chemoresistance mechanisms and revealing therapeutic vulnerabilities. ceRNA networks (lncRNA-miRNA-mRNA) provide insights into tumorigenesis and progression, facilitating the identification of subtype-specific biomarkers in the heterogeneous landscape of TNBC. lncRNAs, with their complex structure and tissue-specific expression, are promising both as biomarkers and therapeutic targets. Liquid biopsies and next-generation sequencing are paving the way for personalized lncRNA-based treatments by enabling real-time monitoring of tumor heterogeneity and therapeutic response. While miRNA-mRNA interactions have been extensively studied, the involvement of lncRNA within the ceRNA network remains poorly understood. Elucidating these interactions and their modulation by small molecules may lead to more effective, personalized treatment strategies for TNBC. This review examines long non-coding RNA (lncRNA)- associated competing endogenous RNA (ceRNA) networks, their therapeutic potential, and their application as predictive biomarkers in triple-negative breast cancer (TNBC).
Insights
Triple Negative Breast Cancer (TNBC) is aggressive and resistant to treatments. Understanding long non-coding RNA (lncRNA) competing RNA (ceRNA) networks offers new therapeutic targets and biomarkers for personalized TNBC treatment strategies.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Triple Negative Breast Cancer (TNBC) is an aggressive breast cancer subtype.
- TNBC exhibits intrinsic and acquired chemoresistance, lacking response to standard therapies.
- Novel treatment strategies are urgently needed for TNBC.
Purpose of the Study:
- To review the therapeutic potential and biomarker applications of long non-coding RNA (lncRNA)-associated competing endogenous RNA (ceRNA) networks in TNBC.
- To highlight the role of lncRNAs in TNBC tumorigenesis, progression, and therapeutic resistance.
- To explore how understanding lncRNA ceRNA networks can lead to personalized TNBC treatments.
Main Methods:
- Comprehensive review of existing literature on lncRNA ceRNA networks in TNBC.
- Analysis of molecular profiling data, including transcriptomics, to identify therapeutic vulnerabilities.
- Examination of advancements in small molecules, drug repositioning, and combinatorial therapies for TNBC.
Main Results:
- lncRNAs play a crucial role in the complex ceRNA networks within TNBC.
- Dysregulation of lncRNA ceRNA networks contributes to TNBC heterogeneity and chemoresistance.
- lncRNAs show promise as predictive biomarkers and therapeutic targets for TNBC.
Conclusions:
- Elucidating lncRNA ceRNA networks is key to understanding TNBC pathogenesis and resistance.
- Targeting lncRNA ceRNA networks with novel agents and personalized strategies holds significant therapeutic potential for TNBC.
- Further research into lncRNA-mediated ceRNA interactions is essential for advancing TNBC treatment.
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