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Selective degradation of BRD4 suppresses lung cancer cell proliferation using GSH-responsive PROTAC precursors
Heli Fan1, Zhili Zhou2, Dehao Yu1
1Tianjin Key Laboratory on Technologies Enabling Development of Clinical Therapeutics and Diagnostics, School of Pharmacy, Department of Nuclear Medicine, Tianjin Medical University General Hospital, Tianjin Medical University, Tianjin 300070, PR China.
Abstract:
BRD4,as a transcriptional and epigenetic regulator to mediate cellular functions, plays an important role in cancer development.Targeting BRD4 with conventional inhibitors in cancer therapy requires high doses, which often leads to off-target and adverse effects. BRD4-targeted proteolysis-targeting chimeras (PROTACs) can catalytically degrade BRD4 utilizing the endogenous proteasome system, and exhibit promising anti-tumor activity. However, most of the developed PROTACs are non-cancer specific and relatively toxic towards normal cells, limiting their practical applications in cancer treatment. By taking advantage of higher glutathione (GSH) levels in cancer cells than that in normal cells, we developed several GSH-responsive PROTAC precursors 1a-c via the attachment of a GSH-trigger unit on the hydroxyl group of the VHL (von Hippel-Lindau) ligand for the recruitment of E3 ligase. Among the precursors, 1a can be efficiently activated by the innately higher concentrations of GSH in lung cancer cells (A549 and H1299) to release active PROTAC 1, degrading intracellular BRD4 and resulting in cytotoxicity, which is confirmed by mechanistic investigation. On the other hand, 1a cannot be efficiently triggered in normal lung cells (WI38 and HULEC-5a) containing lower levels of GSH, therefore reducing the adverse effects on normal cells. This work provides an alternative proof of concept approach for developing stimuli-responsive PROTAC precursors, and affords a novel insight to improve the selectivity and minimize the adverse effects of current PROTACs, hence enhancing their clinical potential.
Insights
Researchers developed novel glutathione-responsive proteolysis-targeting chimeras (PROTACs) to selectively degrade BRD4 in cancer cells. This approach minimizes toxicity to normal cells, enhancing the clinical potential of targeted cancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Medicinal Chemistry
Background:
- BRD4 is a key regulator in cancer development, but conventional inhibitors cause adverse effects.
- Proteolysis-targeting chimeras (PROTACs) offer a promising strategy for cancer therapy by degrading target proteins.
- Existing PROTACs often lack cancer specificity, leading to toxicity in normal cells.
Purpose of the Study:
- To design and synthesize novel glutathione (GSH)-responsive PROTAC precursors for targeted BRD4 degradation.
- To improve the selectivity of PROTACs by exploiting higher GSH levels in cancer cells.
- To reduce off-target and adverse effects of PROTAC-based cancer therapy.
Main Methods:
- Development of GSH-responsive PROTAC precursors (1a-c) by modifying the VHL ligand.
- Activation of PROTAC precursors in lung cancer cells (A549, H1299) and normal lung cells (WI38, HULEC-5a).
- Assessment of BRD4 degradation, cytotoxicity, and mechanistic investigation.
Main Results:
- PROTAC precursor 1a was efficiently activated by high GSH levels in lung cancer cells, leading to BRD4 degradation and cytotoxicity.
- PROTAC precursor 1a showed limited activation in normal lung cells with lower GSH levels, reducing adverse effects.
- Mechanistic studies confirmed the targeted degradation of intracellular BRD4.
Conclusions:
- Glutathione-responsive PROTAC precursors offer a promising strategy for selective cancer therapy.
- This approach enhances PROTAC selectivity and minimizes toxicity to normal tissues.
- The developed PROTACs show significant clinical potential for targeted cancer treatment.
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