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The Unfolded Protein Response in Sarcomas: From Proteostasis to Therapy Resistance
Elizabeta Ilieva1, Sofia Avnet1, Nicola Baldini1,2
1Department of Biomedical and Neuromotor Sciences, Alma Mater Studiorum, Università di Bologna, 40138 Bologna, Italy.
Abstract:
Sarcomas are a rare and heterogeneous group of malignant tumors that pose significant clinical challenges, including delayed diagnosis, therapeutic resistance, and lack of reliable biomarkers. Despite advances in surgery and chemotherapy, effective treatment options for advanced disease remain limited, underscoring the urgent need to identify novel therapeutic vulnerabilities. The unfolded protein response (UPR), a conserved cellular stress pathway that maintains proteostasis under conditions of endoplasmic reticulum stress, has emerged as a critical modulator of cancer cell fate. By regulating protein folding, redox balance, and survival pathways, the UPR exerts a dual role in tumor biology, supporting tumor growth under stress while triggering apoptosis when stress becomes sustained or severe. In sarcomas, accumulating evidence indicates that UPR activation contributes to metabolic adaptation, angiogenesis, immune evasion, and chemoresistance. Drawing on the current literature encompassing preclinical models, recent translational research (PubMed from 2000 to 2025), and registered clinical trials, this narrative review synthesizes current knowledge on the multifaceted role of the UPR in sarcoma pathogenesis, with a particular focus on osteosarcoma. Furthermore, it explores the feasibility of UPR-targeted strategies as adjuvant or combinatorial approaches. In conclusion, this review provides an integrated and in-depth analysis of UPR-mediated mechanisms in sarcomas, offering perspectives on how targeting this pathway could accelerate the development of more effective and personalized treatments.
Insights
The unfolded protein response (UPR) plays a key role in sarcoma development and resistance to treatment. Targeting the UPR offers a promising strategy for developing novel sarcoma therapies.
Area of Science:
- Oncology
- Molecular Biology
- Cellular Stress Response
Background:
- Sarcomas are rare, challenging cancers with limited treatment options for advanced stages.
- The unfolded protein response (UPR) is a cellular pathway critical for maintaining protein balance under stress.
- UPR activation is increasingly recognized as a factor in sarcoma progression and treatment resistance.
Purpose of the Study:
- To synthesize current knowledge on the UPR's role in sarcoma pathogenesis, focusing on osteosarcoma.
- To explore UPR-targeted strategies as potential therapeutic approaches for sarcomas.
- To provide an integrated analysis of UPR-mediated mechanisms in sarcomas.
Main Methods:
- Comprehensive literature review of preclinical models, translational research (PubMed 2000-2025), and clinical trials.
- Analysis of UPR's involvement in metabolic adaptation, angiogenesis, immune evasion, and chemoresistance in sarcomas.
- Evaluation of UPR-targeting strategies for sarcoma treatment.
Main Results:
- UPR activation supports sarcoma growth by influencing metabolic adaptation, angiogenesis, immune evasion, and chemoresistance.
- The UPR has a dual role, promoting tumor survival under stress but potentially inducing apoptosis when stress is severe.
- Evidence suggests UPR modulation is crucial for sarcoma cell fate.
Conclusions:
- The UPR is a significant factor in sarcoma pathogenesis and a potential therapeutic target.
- Targeting the UPR could lead to more effective and personalized treatments for sarcomas, including osteosarcoma.
- Further research into UPR-mediated mechanisms is essential for advancing sarcoma therapy.
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