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Establishment of Cancer Stem Cell Cultures from Human Conventional Osteosarcoma
Published on: October 14, 2016
Focus on Hypoxia-Related Pathways in Pediatric Osteosarcomas and Their Druggability
Marina Pierrevelcin1, Quentin Fuchs1, Benoit Lhermitte1,2
1Laboratory of Bioimaging and Pathologies, UMR CNRS 7021, 67405 Illkirch, France.
Abstract:
Osteosarcoma is the most frequent primary bone tumor diagnosed during adolescence and young adulthood. It is associated with the worst outcomes in the case of poor response to chemotherapy and in metastatic disease. While no molecular biomarkers are clearly and currently associated with those worse situations, the study of pathways involved in the high level of tumor necrosis and in the immune/metabolic intra-tumor environment seems to be a way to understand these resistant and progressive osteosarcomas. In this review, we provide an updated overview of the role of hypoxia in osteosarcoma oncogenesis, progression and during treatment. We describe the role of normoxic/hypoxic environment in normal tissues, bones and osteosarcomas to understand their role and to estimate their druggability. We focus particularly on the role of intra-tumor hypoxia in osteosarcoma cell resistance to treatments and its impact in its endogenous immune component. Together, these previously published observations conduct us to present potential perspectives on the use of therapies targeting hypoxia pathways. These therapies could afford new treatment approaches in this bone cancer. Nevertheless, to study the osteosarcoma cell druggability, we now need specific in vitro models closely mimicking the tumor, its intra-tumor hypoxia and the immune microenvironment to more accurately predict treatment efficacy and be complementary to mouse models.
Insights
Hypoxia, a low-oxygen state, drives osteosarcoma progression and treatment resistance. Targeting hypoxia pathways offers new therapeutic strategies for this bone cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Osteosarcoma is the most common primary bone cancer in adolescents and young adults.
- Poor response to chemotherapy and metastasis are linked to worse outcomes in osteosarcoma.
- Understanding the tumor microenvironment, including hypoxia, is crucial for treating resistant osteosarcoma.
Purpose of the Study:
- To review the role of hypoxia in osteosarcoma development, progression, and treatment response.
- To explore the impact of intra-tumor hypoxia on osteosarcoma cell resistance and the immune microenvironment.
- To discuss potential therapeutic strategies targeting hypoxia pathways in osteosarcoma.
Main Methods:
- Literature review of studies on hypoxia in normal tissues, bone, and osteosarcoma.
- Analysis of the role of hypoxia in osteosarcoma cell resistance to treatment.
- Examination of hypoxia's influence on the immune component within osteosarcoma.
Main Results:
- Hypoxia significantly contributes to osteosarcoma oncogenesis and progression.
- Intra-tumor hypoxia promotes resistance to conventional therapies.
- Hypoxia impacts the immune microenvironment, influencing treatment efficacy.
Conclusions:
- Targeting hypoxia pathways presents a promising therapeutic avenue for osteosarcoma.
- Development of advanced in vitro models mimicking tumor hypoxia and immune microenvironment is needed.
- Improved models will enhance prediction of treatment efficacy for osteosarcoma.
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