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Published on: December 9, 2015
Designing Telomerase Inhibitors for Cancer Therapy: Mechanistic Insights, Medicinal Chemistry Strategies, Challenges,
Ahmed A Al-Karmalawy1, Mohamed Ibrahim Attia2, Marwa Sharaky3
1Department of Pharmaceutical Chemistry, Faculty of Pharmacy, Horus University-Egypt, New Damietta, Egypt.
Abstract:
Telomerase inhibition has emerged as a clinically relevant strategy in cancer therapy, targeting a key hallmark of tumor cell immortality. Reactivated in the majority of human cancers, telomerase enables sustained proliferation by maintaining telomere length, making it an attractive and broadly applicable therapeutic target. This review provides an updated and integrative perspective on telomerase-targeted approaches, spanning small-molecule inhibitors, antisense oligonucleotides, immunotherapies, and gene-based strategies. Particular emphasis is placed on clinical validation, highlighting the recent regulatory approval of imetelstat and its therapeutic impact in hematologic malignancies, which represents a major milestone in translating telomerase inhibition into clinical practice. In addition, we critically evaluate emerging compounds and mechanistic classes with respect to their translational potential, selectivity, and limitations. Unlike previous reviews that primarily focus on either biological mechanisms or isolated compound classes, this work uniquely integrates medicinal chemistry insights with clinical outcomes, providing a balanced assessment of structure-activity relationships alongside real-world therapeutic progress. Key challenges-including delayed pharmacodynamic effects, toxicity in normal proliferative tissues, and resistance via alternative lengthening of telomeres (ALT)-are discussed within the context of precision oncology. Overall, this review underscores the transition of telomerase inhibition from a conceptual target to a clinically validated approach and highlights future directions for optimizing its therapeutic utility in cancer treatment.
Insights
Telomerase inhibition is a validated cancer therapy targeting tumor cell immortality. Recent approval of imetelstat for blood cancers marks a milestone, with ongoing research into new compounds and overcoming resistance mechanisms.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Telomerase is reactivated in most cancers, enabling sustained proliferation by maintaining telomere length.
- Telomerase inhibition is a clinically relevant strategy targeting tumor cell immortality.
- This review focuses on telomerase as a therapeutic target in cancer.
Purpose of the Study:
- To provide an updated and integrative perspective on telomerase-targeted cancer therapies.
- To highlight clinical validation and therapeutic impact of telomerase inhibitors.
- To critically evaluate emerging compounds and their translational potential.
Main Methods:
- Review of small-molecule inhibitors, antisense oligonucleotides, immunotherapies, and gene-based strategies.
- Emphasis on clinical validation, including regulatory approval of imetelstat.
- Integration of medicinal chemistry insights with clinical outcomes and structure-activity relationships.
Main Results:
- Imetelstat's regulatory approval for hematologic malignancies is a major milestone.
- Emerging compounds and mechanistic classes are evaluated for translational potential, selectivity, and limitations.
- Challenges such as delayed effects, toxicity, and resistance via alternative lengthening of telomeres (ALT) are discussed.
Conclusions:
- Telomerase inhibition has transitioned from a conceptual target to a clinically validated approach.
- Optimizing therapeutic utility requires addressing challenges within precision oncology.
- Future directions focus on enhancing efficacy and overcoming resistance mechanisms for improved cancer treatment.
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