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Updated: Dec 2, 2025

In Vitro Analysis of E3 Ubiquitin Ligase Function
Published on: May 14, 2021
Systematic exploration of different E3 ubiquitin ligases: an approach towards potent and selective CDK6 degraders
Christian Steinebach1, Yuen Lam Dora Ng2, Izidor Sosič3
1Pharmaceutical Institute , Department of Pharmaceutical & Medicinal Chemistry , University of Bonn , An der Immenburg 4 , 53121 Bonn , Germany .
Abstract:
Cyclin-dependent kinase 6 (CDK6) is an important regulator of the cell cycle. Together with CDK4, it phosphorylates and inactivates retinoblastoma (Rb) protein. In tumour cells, CDK6 is frequently upregulated and CDK4/6 kinase inhibitors like palbociclib possess high activity in breast cancer and other malignancies. Besides its crucial catalytic function, kinase-independent roles of CDK6 have been described. Therefore, targeted degradation of CDK6 may be advantageous over kinase inhibition. Proteolysis targeting chimeras (PROTACs) structurally based on the cereblon (CRBN) ligand thalidomide have recently been described to degrade the targets CDK4/6. However, CRBN-based PROTACs have several limitations including the remaining activity of immunomodulatory drugs (IMiDs) on Ikaros transcription factors as well as CRBN inactivation as a resistance mechanism in cancer. Here, we systematically explored the chemical space of CDK4/6 PROTACs by addressing different E3 ligases and connecting their respective small-molecule binders via various linkers to palbociclib. The spectrum of CDK6-specific PROTACs was extended to von Hippel Lindau (VHL) and cellular inhibitor of apoptosis protein 1 (cIAP1) that are essential for most cancer cells and therefore less likely to be inactivated. Our VHL-based PROTAC series included compounds that were either specific for CDK6 or exhibited dual activity against CDK4 and CDK6. IAP-based PROTACs caused a combined degradation of CDK4/6 and IAPs resulting in synergistic effects on cancer cell growth. Our new degraders showed potent and long-lasting degrading activity in human and mouse cells and inhibited proliferation of several leukemia, myeloma and breast cancer cell lines. In conclusion, we show that VHL- and IAP-based PROTACs are an attractive approach for targeted degradation of CDK4/6 in cancer.
Insights
Targeted degradation of CDK6 using novel PROTACs offers a promising cancer therapy. Researchers developed VHL- and IAP-based PROTACs that effectively degrade CDK4/6, inhibiting cancer cell growth.
Area of Science:
- Molecular Biology
- Oncology
- Medicinal Chemistry
Background:
- Cyclin-dependent kinase 6 (CDK6) is a key cell cycle regulator, often overexpressed in tumors.
- CDK4/6 inhibitors like palbociclib are effective in certain cancers, but kinase-independent roles of CDK6 warrant alternative strategies.
- Proteolysis targeting chimeras (PROTACs) offer targeted protein degradation, but cereblon (CRBN)-based PROTACs have limitations.
Purpose of the Study:
- To explore novel PROTACs targeting CDK6 by utilizing different E3 ligases beyond CRBN.
- To develop VHL- and IAP-based PROTACs for CDK4/6 degradation.
- To evaluate the efficacy of these new degraders in various cancer cell lines.
Main Methods:
- Systematic exploration of PROTAC chemical space by linking palbociclib to binders of VHL and cIAP1 E3 ligases via diverse linkers.
- Synthesis and characterization of novel VHL- and IAP-based PROTACs targeting CDK4/6.
- Assessment of PROTAC-induced degradation, cellular activity, and proliferation inhibition in human and mouse cancer cells.
Main Results:
- Developed CDK6-specific and dual CDK4/6-targeting PROTACs utilizing VHL and cIAP1 E3 ligases.
- IAP-based PROTACs demonstrated synergistic effects by co-degrading CDK4/6 and IAPs, inhibiting cancer cell growth.
- New VHL- and IAP-based PROTACs exhibited potent, long-lasting degradation activity and inhibited proliferation in leukemia, myeloma, and breast cancer cell lines.
Conclusions:
- VHL- and IAP-based PROTACs represent a viable and attractive strategy for the targeted degradation of CDK4/6 in cancer therapy.
- These novel degraders overcome limitations associated with CRBN-based PROTACs and offer potent anti-cancer effects.
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