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Published on: November 9, 2020
Next-Generation Proteolysis-Targeting Chimeras in Precision Oncology: Multifunctional Designs, Emerging Modalities,
Mohamed S Nafie1,2, Mohamed K Diab3, Asmaa S A Yassen4,5
1Department of Chemistry, College of Sciences, University of Sharjah, Sharjah, United Arab Emirates.
Abstract:
Proteolysis-targeting chimeras (PROTACs)-mediated protein degradation has been recently developed as a game-changing approach in oncology drug development. It represents a paradigm shift from traditional enzyme inhibition to selective protein degradation. PROTACs are different from regular small-molecule inhibitors because they are heterobifunctional compounds that use the ubiquitin-proteasome system to breakdown disease-causing oncogenic proteins. This review discusses the next generation of PROTAC platforms that innovate beyond traditional designs, such as dual-targeting PROTACS that present a novel mode of action, transcription factor-targeting PROTACs (TF-PROTACs), phosphorylation-dependent PROTACs (PhosphoTACs), and phosphorylation binding chimeras (PhosTACs). In kinase degradation, PROTACs have shown promise in addressing resistance mechanisms and carcinogenic drivers. Despite these advancements, issues with clinical pharmacokinetics, E3 ligase tissue selectivity, and subcellular localization persist. Additionally, the development of bio-responsive and spatially controlled PROTAC systems, such as photocaged and folate-caged PROTACs, was fully discussed, which achieves maximal precision in tumor selectivity. Furthermore, ARV-110 and ARV-471, as two representative PROTACs, have entered clinical trials, suggesting their potentially broader application. Accordingly, this review provides a critical overview of the design rationales, molecular mechanisms of action, therapeutic utilities, and synthetic issues associated with these innovative modalities, focusing on on their translational implication and pharmacokinetic limitations, as well as potential future clinical applications.
Insights
Proteolysis-targeting chimeras (PROTACs) offer a novel approach to cancer treatment by degrading oncogenic proteins. Next-generation PROTACs show promise, but challenges in pharmacokinetics and selectivity remain for clinical application.
Area of Science:
- Oncology
- Molecular Biology
- Drug Development
Background:
- Proteolysis-targeting chimeras (PROTACs) represent a paradigm shift in oncology, moving from enzyme inhibition to selective protein degradation.
- PROTACs are heterobifunctional molecules that harness the ubiquitin-proteasome system to eliminate disease-causing proteins.
Purpose of the Study:
- To review next-generation PROTAC platforms beyond traditional designs.
- To discuss innovative PROTAC modalities like dual-targeting, TF-PROTACs, PhosphoTACs, and PhosTACs.
- To critically assess the translational implications, pharmacokinetic limitations, and future clinical applications of advanced PROTACs.
Main Methods:
- Review of current literature on PROTAC technology.
- Analysis of novel PROTAC designs including dual-targeting, TF-PROTACs, PhosphoTACs, and PhosTACs.
- Discussion of bio-responsive and spatially controlled PROTAC systems (photocaged, folate-caged).
Main Results:
- PROTACs show promise in overcoming kinase degradation resistance and targeting carcinogenic drivers.
- Next-generation PROTACs, including dual-targeting and TF-PROTACs, offer novel mechanisms of action.
- Bio-responsive PROTACs enhance tumor selectivity; ARV-110 and ARV-471 are in clinical trials.
Conclusions:
- Advanced PROTAC platforms present significant therapeutic potential in oncology.
- Addressing pharmacokinetic limitations and E3 ligase selectivity is crucial for clinical success.
- Future applications of PROTACs are broad, with ongoing research focusing on precision and control.
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