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Updated: Nov 15, 2025

Chemical Inactivation of the E3 Ubiquitin Ligase Cereblon by Pomalidomide-based Homo-PROTACs
Published on: May 15, 2019
Cancer therapies based on targeted protein degradation - lessons learned with lenalidomide
Max Jan1,2,3, Adam S Sperling1,2, Benjamin L Ebert4,5,6
1Department of Medical Oncology, Dana-Farber Cancer Institute, Boston, MA, USA.
Abstract:
For decades, anticancer targeted therapies have been designed to inhibit kinases or other enzyme classes and have profoundly benefited many patients. However, novel approaches are required to target transcription factors, scaffolding proteins and other proteins central to cancer biology that typically lack catalytic activity and have remained mostly recalcitrant to drug development. The selective degradation of target proteins is an attractive approach to expand the druggable proteome, and the selective oestrogen receptor degrader fulvestrant served as an early example of this concept. Following a long and tragic history in the clinic, the immunomodulatory imide drug (IMiD) thalidomide was discovered to exert its therapeutic activity via a novel and unexpected mechanism of action: targeting proteins to an E3 ubiquitin ligase for subsequent proteasomal degradation. This discovery has paralleled and directly catalysed myriad breakthroughs in drug development, leading to the rapid maturation of generalizable chemical platforms for the targeted degradation of previously undruggable proteins. Decades of clinical experience have established front-line roles for thalidomide analogues, including lenalidomide and pomalidomide, in the treatment of haematological malignancies. With a new generation of 'degrader' drugs currently in development, this experience provides crucial insights into class-wide features of degraders, including a unique pharmacology, mechanisms of resistance and emerging therapeutic opportunities. Herein, we review these past experiences and discuss their application in the clinical development of novel degrader therapies.
Insights
Targeted protein degradation offers a new way to treat cancer by removing disease-causing proteins. This approach, pioneered by drugs like thalidomide, is expanding cancer therapy options.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Traditional cancer therapies target enzymes, but many cancer proteins lack catalytic activity and are difficult to drug.
- Selective protein degradation is a promising strategy to target previously undruggable proteins.
- The discovery of thalidomide's mechanism of action, targeting proteins for degradation, revolutionized drug development.
Purpose of the Study:
- To review the development and clinical application of targeted protein degraders in cancer therapy.
- To highlight the insights gained from decades of experience with thalidomide analogues.
- To discuss the potential of novel degrader drugs in expanding cancer treatment options.
Main Methods:
- Review of historical clinical data and drug development milestones.
- Analysis of the pharmacology and resistance mechanisms of protein degraders.
- Discussion of emerging therapeutic opportunities for degrader drugs.
Main Results:
- Selective estrogen receptor degrader (SERD) fulvestrant and thalidomide analogues (lenalidomide, pomalidomide) demonstrate the efficacy of protein degradation.
- Targeted protein degradation has led to generalizable chemical platforms for previously undruggable targets.
- Thalidomide analogues are established treatments for hematological malignancies.
Conclusions:
- Targeted protein degradation is a powerful strategy to expand the druggable proteome in cancer.
- Clinical experience with existing degraders provides valuable insights for developing new therapies.
- A new generation of degrader drugs holds significant promise for future cancer treatment.
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