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Updated: Sep 27, 2025

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Published on: March 7, 2025
The role of cellular proteostasis in antitumor immunity
Rebecca Mercier1, Paul LaPointe1
1Faculty of Medicine & Dentistry, Department of Cell Biology, University of Alberta, Edmonton, Alberta, Canada.
Abstract:
Immune checkpoint blockade therapy is perhaps the most important development in cancer treatment in recent memory. It is based on decades of investigation into the biology of immune cells and the role of the immune system in controlling cancer growth. While the molecular circuitry that governs the immune system in general-and antitumor immunity in particular-is intensely studied, far less attention has been paid to the role of cellular stress in this process. Proteostasis, intimately linked to cell stress responses, refers to the dynamic regulation of the cellular proteome and is maintained through a complex network of systems that govern the synthesis, folding, and degradation of proteins in the cell. Disruption of these systems can result in the loss of protein function, altered protein function, the formation of toxic aggregates, or pathologies associated with cell stress. However, the importance of proteostasis extends beyond its role in maintaining proper protein function; proteostasis governs how tolerant cells may be to mutations in protein-coding genes and the overall half-life of proteins. Such gene expression changes may be associated with human diseases including neurodegenerative diseases, metabolic disease, and cancer and manifest at the protein level against the backdrop of the proteostasis network in any given cellular environment. In this review, we focus on the role of proteostasis in regulating immune responses against cancer as well the role of proteostasis in determining immunogenicity of cancer cells.
Insights
Cellular proteostasis, the regulation of protein balance, is crucial for effective anti-cancer immunity. Understanding proteostasis helps improve cancer immunotherapies and cancer cell recognition.
Area of Science:
- Immunology
- Molecular Biology
- Cellular Biology
Background:
- Immune checkpoint blockade therapy has revolutionized cancer treatment.
- Decades of research focused on immune cell biology and cancer immunity.
- The role of cellular stress and proteostasis in antitumor immunity is understudied.
Purpose of the Study:
- To review the role of proteostasis in regulating anti-cancer immune responses.
- To explore how proteostasis influences cancer cell immunogenicity.
- To highlight the connection between cellular stress and cancer immunology.
Main Methods:
- Literature review focusing on proteostasis and cancer immunology.
- Analysis of molecular mechanisms linking protein homeostasis to immune function.
- Examination of how cellular stress impacts tumor microenvironment and immune evasion.
Main Results:
- Proteostasis disruption affects protein function, leading to cellular stress and disease pathologies.
- Proteostasis influences cellular tolerance to mutations and protein half-life.
- Dysregulated proteostasis can impact cancer cell immunogenicity and immune evasion strategies.
Conclusions:
- Proteostasis is a critical, yet underappreciated, factor in cancer immunology.
- Targeting proteostasis pathways may offer novel strategies for cancer immunotherapy.
- Further research into proteostasis is essential for advancing cancer treatment and understanding tumor immunity.
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