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Transfer of Manipulated Tumor-associated Neutrophils into Tumor-Bearing Mice to Study their Angiogenic Potential In Vivo
Published on: July 20, 2019
Partners in crime: TNFα-based networks promoting cancer progression
1School of Molecular Cell Biology and Biotechnology, George S. Wise Faculty of Life Sciences, Tel Aviv University, 6997801, Tel Aviv, Israel. aditbb@tauex.tau.ac.il.
Abstract:
Current therapeutic approaches in malignancy are often based on combination therapies, reflecting present understanding of the way different players act together in cancer. The cooperative activity of several elements can potentiate the pro-metastatic functions of the cancer cells and of the tumor microenvironment (TME), together leading to a more aggressive disease phenotype. The design of improved therapeutic modalities requires better identification of networks that act at specific cancer-related settings, and of the molecular mechanisms involved. Such studies will indicate if therapies that co-target several factors or their receptors, simultaneously, could apply. Also, by delineating the intracellular pathways that are activated under such cooperative activities, it will be possible to determine whether to inhibit one specific molecular route that is shared by the different partners, or alternatively, design modalities that jointly target intracellular components acting in concert. This Focused Research Review illuminates the therapeutic relevance of this research field by describing our published findings in breast cancer-related publications, which identified networks that are established by the pro-inflammatory/pro-metastatic cytokine TNFα. It describes the additive/synergistic activities of TNFα with other soluble factors residing at the TME (e.g., IL-1β, TGFβ1, estrogen, EGF), with intracellular components such as the Ras oncogene, and with the tumor-stroma contexture through the activation of molecular cascades (Notch). The roles of the p65 (NF-κB) pathway-acting alone or in intricate relationships with other intracellular mechanisms-are described, the "TNFα-based network" is discussed as a general paradigm in malignancy and its clinical implications in cancer therapy are addressed.
Insights
Identifying networks driven by tumor necrosis factor-alpha (TNFα) reveals how cancer cells and the tumor microenvironment cooperate. Understanding these molecular mechanisms can lead to novel combination therapies targeting multiple factors simultaneously for improved cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Malignancy treatments often involve combination therapies due to the complex interplay of cellular and microenvironmental factors.
- Cooperative interactions between cancer cells and the tumor microenvironment (TME) can enhance pro-metastatic functions, leading to aggressive disease phenotypes.
Purpose of the Study:
- To identify molecular networks driving cancer progression and to explore therapeutic strategies targeting these cooperative mechanisms.
- To investigate the role of tumor necrosis factor-alpha (TNFα) in establishing pro-metastatic networks within the TME.
Main Methods:
- Focused research review of published findings in breast cancer.
- Analysis of additive/synergistic activities of TNFα with other soluble factors (IL-1β, TGFβ1, estrogen, EGF), intracellular components (Ras oncogene), and tumor-stroma interactions (Notch pathway).
- Examination of the p65 (NF-κB) pathway's role in TNFα-mediated networks.
Main Results:
- Identified networks established by TNFα, demonstrating its cooperative activity with various TME components and intracellular pathways.
- Elucidated the synergistic effects of TNFα with cytokines, growth factors, and oncogenes in promoting cancer aggressiveness.
- Described the activation of molecular cascades like Notch and the involvement of the p65 (NF-κB) pathway.
Conclusions:
- The "TNFα-based network" serves as a general paradigm in malignancy, highlighting the importance of understanding cooperative mechanisms.
- Delineating these networks provides insights for designing combination therapies that co-target multiple factors or intracellular pathways simultaneously.
- Findings have significant clinical implications for developing improved cancer therapeutic modalities.
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