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Precision oncology revolution: CRISPR-Cas9 and PROTAC technologies unleashed
Karim Kanbar1,2, Roy El Darzi1,2, Diana E Jaalouk2
1Faculty of Medicine, American University of Beirut, Beirut, Lebanon.
Abstract:
Cancer continues to present a substantial global health challenge, with its incidence and mortality rates persistently reflecting its significant impact. The emergence of precision oncology has provided a breakthrough in targeting oncogenic drivers previously deemed "undruggable" by conventional therapeutics and by limiting off-target cytotoxicity. Two groundbreaking technologies that have revolutionized the field of precision oncology are primarily CRISPR-Cas9 gene editing and more recently PROTAC (PROteolysis TArgeting Chimeras) targeted protein degradation technology. CRISPR-Cas9, in particular, has gained widespread recognition and acclaim due to its remarkable ability to modify DNA sequences precisely. Rather than editing the genetic code, PROTACs harness the ubiquitin proteasome degradation machinery to degrade proteins of interest selectively. Even though CRISPR-Cas9 and PROTAC technologies operate on different principles, they share a common goal of advancing precision oncology whereby both approaches have demonstrated remarkable potential in preclinical and promising data in clinical trials. CRISPR-Cas9 has demonstrated its clinical potential in this field due to its ability to modify genes directly and indirectly in a precise, efficient, reversible, adaptable, and tissue-specific manner, and its potential as a diagnostic tool. On the other hand, the ability to administer in low doses orally, broad targeting, tissue specificity, and controllability have reinforced the clinical potential of PROTAC. Thus, in the field of precision oncology, gene editing using CRISPR technology has revolutionized targeted interventions, while the emergence of PROTACs has further expanded the therapeutic landscape by enabling selective protein degradation. Rather than viewing them as mutually exclusive or competing methods in the field of precision oncology, their use is context-dependent (i.e., based on the molecular mechanisms of the disease) and they potentially could be used synergistically complementing the strengths of CRISPR and vice versa. Herein, we review the current status of CRISPR and PROTAC designs and their implications in the field of precision oncology in terms of clinical potential, clinical trial data, limitations, and compare their implications in precision clinical oncology.
Insights
Precision oncology advances with CRISPR gene editing and PROTAC targeted protein degradation. These technologies offer new ways to combat cancer by precisely targeting genetic mutations and protein degradation, showing promise in clinical trials.
Area of Science:
- Oncology
- Biotechnology
- Genetics
Background:
- Cancer remains a significant global health challenge, necessitating innovative therapeutic strategies.
- Precision oncology aims to target specific molecular drivers of cancer, improving efficacy and reducing side effects.
- Conventional therapies often struggle with "undruggable" targets and off-target toxicities.
Purpose of the Study:
- To review the current status and clinical implications of CRISPR-Cas9 gene editing and PROTAC targeted protein degradation in precision oncology.
- To compare the designs, potential, and limitations of CRISPR and PROTAC technologies.
- To explore the synergistic potential of combining these groundbreaking approaches.
Main Methods:
- Review of CRISPR-Cas9 gene editing technology for precise DNA modification.
- Review of PROTAC (PROteolysis TArgeting Chimeras) technology for targeted protein degradation.
- Analysis of preclinical and clinical trial data for both technologies in cancer treatment.
Main Results:
- CRISPR-Cas9 offers precise, efficient, and adaptable gene modification with diagnostic potential.
- PROTACs provide orally administrable, tissue-specific protein degradation with broad targeting capabilities.
- Both technologies demonstrate significant potential in preclinical studies and promising clinical trial data.
Conclusions:
- CRISPR and PROTAC technologies represent revolutionary advances in precision oncology.
- Their application is context-dependent, based on specific molecular mechanisms of cancer.
- These complementary technologies hold potential for synergistic use, expanding therapeutic options.
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