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Updated: Sep 15, 2025

High-Throughput Cellular Profiling of Targeted Protein Degradation Compounds Using HiBiT CRISPR Cell Lines
Published on: November 9, 2020
Epigenetic therapy meets targeted protein degradation: HDAC-PROTACs in cancer treatment
Md Sadique Hussain1,2, Liming Zhang3, Amita Joshi Rana4
1Uttaranchal Institute of Pharmaceutical Sciences, Uttaranchal University, Dehradun, India.
Abstract:
Epigenetic therapy and targeted protein degradation have converged in the development of histone deacetylases (HDACs)-targeting proteolysis-targeting chimeras (PROTACs), offering a novel approach to cancer treatment. Unlike traditional HDAC inhibitors, HDAC-PROTACs facilitate selective degradation of HDACs via the ubiquitin-proteasome system, effectively eliminating both enzymatic and scaffolding functions. These bifunctional molecules recruit HDACs to E3 ligases, triggering ubiquitination and subsequent proteasomal degradation. PROTACs demonstrate catalytic activity, requiring lower dosages while sustaining prolonged effects compared to inhibitors. Advances in PROTAC chemistry have led to the development of selective degraders targeting distinct HDAC classes. Class I HDAC-targeting PROTACs, such as PROTAC 1 and PROTAC 2, induce robust degradation of HDAC1-3 with nanomolar DC50 values, showing promising anti-cancer activity. Similarly, class IIa and IIb HDAC PROTACs, including selective HDAC4 and HDAC6 degraders, exhibit potent anti-proliferative effects in leukemia, lymphoma, and multiple myeloma models. Despite these advancements, challenges persist in optimizing selectivity, linker design, and bioavailability while mitigating off-target effects. Future strategies include enhancing tumor-specific delivery, refining ligand-E3 ligase compatibility, and integrating combination therapies to overcome resistance. This review explores the mechanistic insights, therapeutic potential, and challenges associated with HDAC-targeting PROTACs, highlighting their promising role in precision oncology.
Insights
Epigenetic therapy using HDAC-PROTACs offers a novel cancer treatment by selectively degrading histone deacetylases (HDACs). These molecules show potent anti-cancer activity and promise for precision oncology.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Histone deacetylases (HDACs) are key epigenetic regulators implicated in cancer.
- Traditional HDAC inhibitors face limitations in selectivity and efficacy.
- Targeted protein degradation offers a new therapeutic modality.
Purpose of the Study:
- To review the development and therapeutic potential of HDAC-targeting proteolysis-targeting chimeras (HDAC-PROTACs).
- To highlight the advantages of HDAC-PROTACs over conventional HDAC inhibitors.
- To discuss the challenges and future directions in HDAC-PROTAC research.
Main Methods:
- Development of bifunctional molecules (PROTACs) that recruit HDACs to E3 ligases.
- Utilizing the ubiquitin-proteasome system for selective HDAC degradation.
- Design of PROTACs targeting specific HDAC classes (I, IIa, IIb).
Main Results:
- HDAC-PROTACs achieve selective degradation of target HDACs, eliminating enzymatic and scaffolding functions.
- Class I, IIa, and IIb HDAC-PROTACs demonstrate potent anti-cancer activity in preclinical models.
- PROTACs exhibit catalytic activity, requiring lower doses and offering sustained effects.
Conclusions:
- HDAC-PROTACs represent a promising advancement in epigenetic therapy and precision oncology.
- Further optimization of selectivity, delivery, and combination strategies is crucial.
- HDAC-PROTACs offer a novel approach to cancer treatment by inducing targeted protein degradation.
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