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Updated: Aug 12, 2025

An In Vitro System to Study Tumor Dormancy and the Switch to Metastatic Growth
Published on: August 11, 2011
Involvement of redox signalling in tumour cell dormancy and metastasis
Beatriz Puente-Cobacho1, Alfonso Varela-López2, José L Quiles2
1Department of Genomic Medicine, GENYO, Centre for Genomics and Oncology, Pfizer-University of Granada and Andalusian Regional Government, PTS, Granada, Spain.
Abstract:
Decades of research on oncogene-driven carcinogenesis and gene-expression regulatory networks only started to unveil the complexity of tumour cellular and molecular biology. This knowledge has been successfully implemented in the clinical practice to treat primary tumours. In contrast, much less progress has been made in the development of new therapies against metastasis, which are the main cause of cancer-related deaths. More recently, the role of epigenetic and microenviromental factors has been shown to play a key role in tumour progression. Free radicals are known to communicate the intracellular and extracellular compartments, acting as second messengers and exerting a decisive modulatory effect on tumour cell signalling. Depending on the cellular and molecular context, as well as the intracellular concentration of free radicals and the activation status of the antioxidant system of the cell, the signalling equilibrium can be tilted either towards tumour cell survival and progression or cell death. In this regard, recent advances in tumour cell biology and metastasis indicate that redox signalling is at the base of many cell-intrinsic and microenvironmental mechanisms that control disseminated tumour cell fate and metastasis. In this manuscript, we will review the current knowledge about redox signalling along the different phases of the metastatic cascade, including tumour cell dormancy, making emphasis on metabolism and the establishment of supportive microenvironmental connections, from a redox perspective.
Insights
Redox signaling, involving free radicals, critically influences cancer cell survival, progression, and metastasis. Understanding this signaling is key to developing new anti-metastasis therapies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- While oncogene research advanced primary tumor treatment, metastasis therapies lag, despite metastasis causing most cancer deaths.
- Epigenetic and microenvironmental factors significantly impact tumor progression.
- Free radicals act as signaling molecules, modulating tumor cell behavior based on cellular context and antioxidant status.
Purpose of the Study:
- To review current knowledge on redox signaling in the metastatic cascade.
- To emphasize the role of metabolism and microenvironmental interactions in metastasis from a redox perspective.
Main Methods:
- Literature review of studies on redox signaling, cancer cell biology, and metastasis.
- Analysis of the role of free radicals and antioxidant systems in tumor progression.
- Focus on redox signaling during tumor cell dormancy and microenvironment establishment.
Main Results:
- Redox signaling is fundamental to cell-intrinsic and microenvironmental mechanisms controlling disseminated tumor cell fate.
- Free radical levels and antioxidant capacity determine the balance between tumor cell survival/progression and cell death.
- Redox signaling impacts various stages of the metastatic cascade, including dormancy.
Conclusions:
- Redox signaling is a critical determinant of tumor cell fate and metastasis.
- Targeting redox pathways presents a potential strategy for anti-metastasis therapies.
- Further research into redox signaling in metabolism and microenvironment is needed for therapeutic development.
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