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Angiogenesis and the role of epigenetics in metastasis
Brenda L Coomber1, Joanne L Yu, Kelly E Fathers
1Department of Biomedical Sciences, University of Guelph, Guelph, Ontario, Canada. bcoomber@uoguelph.ca
Abstract:
The major obstacle to devising effective ways to treat cancer is its heterogeneity and genetic instability. It was originally postulated that targeting the process of tumor angiogenesis could circumvent this problem, as it involves genetically stable epigenetically controlled host stroma. Thus, anti-angiogenic approaches should be applicable across various tumor types and organ sites, including metastases. However, early clinical experience with this therapy revealed unexpectedly distinct responses between different tumors and organ sites. Here we propose that the heterogeneity of pre-clinical and clinical results obtained with anti-angiogenic agents stems from the deep functional linkage that may exist between genetic and epigenetic tumor progression. Thus, epigenetic processes regulating tumor associated host blood vessels (such as tumor microenvironment) display unstable, heterogeneous and progressive characteristics to an extent comparable with (and causally linked to) the instability of the cancer cell genome. As well, many known epigenetic factors (such as hypoxia, inflammation, expression of growth factors, etc.) may have genetic causes and consequences (e.g., oncogene expression, loss of tumor suppressor genes). This reciprocal interrelationship and heterogeneity may translate into site and stage specific changes in angiogenesis regulation, and angiogenesis dependence, ultimately to changes in the metastatic ability/efficiency of cancer cells, even in the same patient. A better understanding of the linkage between genetic and epigenetic events in growth and metastasis of various cancers may result in more effective use of anti-angiogenic therapy in future.
Insights
Cancer
Area of Science:
- Oncology
- Cancer Biology
- Molecular Biology
Background:
- Cancer's heterogeneity and genetic instability are major treatment obstacles.
- Tumor angiogenesis targeting was proposed to overcome this, assuming stable host stroma.
- Clinical trials showed varied anti-angiogenic therapy responses across tumor types and sites.
Purpose of the Study:
- To investigate the link between genetic and epigenetic tumor progression.
- To explain the heterogeneity in anti-angiogenic therapy outcomes.
- To explore how this linkage affects angiogenesis and metastasis.
Main Methods:
- Review of existing literature on cancer genetics, epigenetics, and angiogenesis.
- Analysis of the functional relationship between genetic instability and epigenetic regulation in tumor microenvironments.
- Hypothesizing the impact of this interplay on angiogenesis and metastasis.
Main Results:
- Genetic and epigenetic tumor progression are functionally linked.
- Epigenetic regulation of tumor angiogenesis is unstable and heterogeneous, mirroring cancer cell genome instability.
- This reciprocal relationship influences site- and stage-specific angiogenesis and metastasis.
Conclusions:
- The heterogeneity in anti-angiogenic therapy response is due to the interplay between genetic and epigenetic factors.
- Understanding this linkage is crucial for improving anti-angiogenic strategies.
- Future research should focus on the genetic-epigenetic interplay for more effective cancer treatment.