Expanding The Scope of AKT Modulation Through Targeted Protein Degradation
1Research Institutes for Medicines (iMed), Faculty of Pharmacy, University of Lisbon, Av. Prof. Gama Pinto, 1649-003, Lisbon, Portugal. marco.serafini.55ms@gmail.com.
Abstract:
AKT is a critical mediator of the phosphoinositide 3-kinase (PI3K) signalling cascade, playing a key role in regulating essential cellular processes. The identification of AKT as one of the most dysregulated pathways in cancer led to the development of multiple classes of inhibitors. Despite numerous inhibitors entering clinical investigation and leading to the FDA approval of Capivasertib, an ATP-competitive AKT inhibitor, in November 2023, AKT modulation through inhibition was characterised by toxicity and poor clinical efficacy. Targeted Protein Degradation (TPD) spearheaded by PROTACs boasted a paradigmatic shift in drug discovery and was demonstrated to be a valid therapeutic alternative to modulate AKT. To date, numerous AKT-targeting PROTACs have been disclosed. The majority of them outperformed the inhibitors in suppressing AKT activity, nurturing higher potency and improved selectivity. Notably, enhanced antiproliferative effects, sustained by more robust and prolonged inactivation of the AKT downstream signalling was observed. This review highlights AKT as a central therapeutic target in oncology and focuses on AKT modulation through a targeted protein degradation approach mainly using PROTACs. The review aims at illustrating all the AKT-targeting PROTACs disclosed in literature to date, a powerful new pharmacological tool that might remarkably expand the scope of AKT-targeted therapies and further elucidate the role of AKT in both normal and cancer-related phenotypes.
Insights
Targeted Protein Degradation (TPD) using PROTACs offers a potent new strategy for modulating AKT signaling in cancer. AKT-targeting PROTACs demonstrate superior efficacy and selectivity compared to traditional inhibitors, promising improved therapeutic outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- AKT is a key regulator of cellular processes and a frequently dysregulated pathway in cancer.
- Traditional AKT inhibitors show limitations in clinical efficacy and toxicity.
- Targeted Protein Degradation (TPD) presents a novel therapeutic approach.
Purpose of the Study:
- To review AKT-targeting PROTACs as a therapeutic strategy in oncology.
- To highlight the advantages of TPD over traditional AKT inhibition.
- To summarize the current landscape of AKT-targeting PROTACs.
Main Methods:
- Literature review of AKT-targeting PROTACs.
- Comparative analysis of PROTACs versus AKT inhibitors.
- Assessment of downstream signaling and antiproliferative effects.
Main Results:
- Numerous AKT-targeting PROTACs have been developed, largely outperforming AKT inhibitors.
- PROTACs exhibit enhanced potency, selectivity, and sustained suppression of AKT activity.
- Improved antiproliferative effects and prolonged inactivation of downstream signaling pathways were observed.
Conclusions:
- AKT remains a critical therapeutic target in oncology.
- PROTACs represent a powerful new pharmacological tool for AKT modulation.
- AKT-targeting PROTACs hold significant potential to expand therapeutic options and elucidate AKT's role in cancer.
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