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Updated: Aug 25, 2026

Isolation and Culture Expansion of Tumor-specific Endothelial Cells
Published on: October 14, 2015
Oncogenes and tumor angiogenesis: the question of vascular "supply" and vascular "demand"
1Henderson Research Centre, McMaster University, 711 Concession Street, Hamilton, Ontario, Canada L8V 1C3. jrak@thrombosis.hhscr.org
Abstract:
Among novel promising approaches that have recently entered the scene of anti-cancer therapy angiogenesis inhibition and targeting cancer-causing genes (e.g. oncogenes) are of particular interest as potentially highly synergistic. One reason for this is that transforming genetic lesions driving cancer progression (e.g. mutations of ras and/or p53) are thought to be causative for the onset of tumor angiogenesis and thereby responsible for build up of vascular supply which is essential for cancer cell survival, malignant growth, invasion and metastasis. However, many of the same genetic alterations that emerge during disease progression and repeated rounds of mutagenic and/or apoptosis causing therapy could alter cellular hypoxia-, growth factor- and apoptotic pathways in such a manner, as to also render cancer cells (partially) refractory to the detrimental consequences of poor blood vessel accessibility (density), ischemia, hypoxia and growth factor deprivation. As recent experimental evidence suggests, such cancer cells could therefore display a reduced vascular demand and remain viable even in poorly perfused regions of the tumor as well as possess an overall growth/survival advantage. The latter circumstance may lead to (predict) diminished efficacy of anti-angiogenic agents in certain malignancies. Therefore, we propose that analysis of oncogenic pathways and gene expression profiling of cancer cells may lead to important clues as to potential efficacy of anti-angiogenic therapies, the direct target of which is the host vasculature, but which are ultimately aimed at (indirect) destruction/control of the cancer cells population. We also suggest that oncogene (tumor suppressor)-directed therapies may help reverse diminished vascular demand of highly transformed cancer cells and thereby facilitate (sensitize tumors to) therapies directed against vascular supply of cancers and their metastases.
Insights
Targeting tumor blood vessel growth (angiogenesis) and cancer genes (oncogenes) shows promise. Understanding cancer cell genetic changes can predict anti-angiogenesis therapy success and guide combined treatment strategies.
Area of Science:
- Oncology
- Cancer Biology
- Molecular Therapeutics
Background:
- Anti-cancer therapies increasingly combine angiogenesis inhibition with targeting oncogenes.
- Tumor angiogenesis, driven by genetic lesions, is crucial for cancer growth and metastasis.
- Cancer cells can adapt to poor vascularization, reducing sensitivity to anti-angiogenic drugs.
Purpose of the Study:
- To investigate the synergistic potential of combining anti-angiogenesis and oncogene-targeting therapies.
- To explore how genetic alterations in cancer cells influence their response to anti-angiogenic treatments.
- To propose a strategy for predicting and enhancing the efficacy of anti-angiogenesis therapies.
Main Methods:
- Analysis of oncogenic pathways in cancer cells.
- Gene expression profiling of cancer cells.
- Review of experimental evidence on cancer cell adaptation to hypoxia and nutrient deprivation.
Main Results:
- Genetic alterations can render cancer cells resistant to anti-angiogenesis by reducing their vascular demand.
- Such adapted cancer cells may have a survival advantage in poorly perfused tumor regions.
- This resistance can diminish the effectiveness of anti-angiogenic agents in certain cancers.
Conclusions:
- Oncogenic pathway analysis and gene expression profiling can predict anti-angiogenesis therapy efficacy.
- Targeting oncogenes may reverse cancer cell adaptation, sensitizing tumors to anti-angiogenic treatments.
- Combining therapies directed at cancer genes and tumor vasculature offers a promising strategy for cancer treatment.
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