Protein degradation: expanding the toolbox to restrain cancer drug resistance
Hui Ming1, Bowen Li1, Jingwen Jiang1
1West China School of Basic Medical Sciences and Forensic Medicine, and State Key Laboratory of Biotherapy and Cancer Center, West China Hospital, Sichuan University, and Collaborative Innovation Center for Biotherapy, Chengdu, 610041, People's Republic of China.
Abstract:
Despite significant progress in clinical management, drug resistance remains a major obstacle. Recent research based on protein degradation to restrain drug resistance has attracted wide attention, and several therapeutic strategies such as inhibition of proteasome with bortezomib and proteolysis-targeting chimeric have been developed. Compared with intervention at the transcriptional level, targeting the degradation process seems to be a more rapid and direct strategy. Proteasomal proteolysis and lysosomal proteolysis are the most critical quality control systems responsible for the degradation of proteins or organelles. Although proteasomal and lysosomal inhibitors (e.g., bortezomib and chloroquine) have achieved certain improvements in some clinical application scenarios, their routine application in practice is still a long way off, which is due to the lack of precise targeting capabilities and inevitable side effects. In-depth studies on the regulatory mechanism of critical protein degradation regulators, including E3 ubiquitin ligases, deubiquitylating enzymes (DUBs), and chaperones, are expected to provide precise clues for developing targeting strategies and reducing side effects. Here, we discuss the underlying mechanisms of protein degradation in regulating drug efflux, drug metabolism, DNA repair, drug target alteration, downstream bypass signaling, sustaining of stemness, and tumor microenvironment remodeling to delineate the functional roles of protein degradation in drug resistance. We also highlight specific E3 ligases, DUBs, and chaperones, discussing possible strategies modulating protein degradation to target cancer drug resistance. A systematic summary of the molecular basis by which protein degradation regulates tumor drug resistance will help facilitate the development of appropriate clinical strategies.
Insights
Targeting protein degradation offers a rapid strategy against cancer drug resistance. Understanding regulators like E3 ligases and DUBs can lead to precise therapies with fewer side effects.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Drug resistance is a major challenge in cancer therapy.
- Protein degradation pathways, including proteasomal and lysosomal, are critical for cellular quality control.
- Current inhibitors lack precise targeting and cause side effects.
Purpose of the Study:
- To explore the role of protein degradation in regulating various mechanisms of cancer drug resistance.
- To identify key protein degradation regulators (E3 ligases, DUBs, chaperones) for targeted therapy development.
- To provide a systematic summary of molecular mechanisms for clinical strategy development.
Main Methods:
- Review of existing literature on protein degradation and cancer drug resistance.
- Analysis of molecular mechanisms linking protein degradation to drug resistance phenotypes.
- Identification and discussion of specific E3 ligases, deubiquitylating enzymes (DUBs), and chaperones.
Main Results:
- Protein degradation influences drug efflux, metabolism, DNA repair, target alteration, bypass signaling, stemness, and the tumor microenvironment.
- Specific E3 ligases, DUBs, and chaperones are implicated in regulating these resistance mechanisms.
- Targeting these regulators presents a promising strategy for overcoming drug resistance.
Conclusions:
- Modulating protein degradation offers a direct and rapid approach to combat cancer drug resistance.
- In-depth understanding of protein degradation regulators is crucial for developing precise and effective cancer therapies.
- Targeting protein degradation pathways holds potential for reducing side effects and improving clinical outcomes.
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