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Published on: March 30, 2019
Sustained expression of early growth response protein-1 blocks angiogenesis and tumor growth
Markus Lucerna1, Jiri Pomyje, Diana Mechtcheriakova
1Departments of Vascular Biology and Thrombosis Research, Ludwig Boltzmann Institute for Clinical and Experimental Oncology, Medical University of Vienna, Lazarettgasse 19, A-1235 Vienna, Austria.
Abstract:
Transient induction of the transcription factor early growth response protein-1 (EGR-1) plays a pivotal role in the transcriptional response of endothelial cells to the angiogenic growth factors vascular endothelial growth factor (VEGF) and basic fibroblast growth factor (bFGF), which are produced by most tumors and are involved in the angiogenic switch. We report here that sustained expression of EGR-1 by recombinant adenoviruses in endothelial cells, however, leads to the specific induction of potent feedback inhibitory mechanisms, including strong up-regulation of transcriptional repressors, negative cell cycle check point effectors, proteins with established antiangiogenic activity, and several proapoptotic genes. Sustained EGR-1 expression consistently leads to an antiangiogenic state characterized by an altered responsiveness to VEGF and bFGF and a striking inhibition of sprouting and tubule formation in vitro. Furthermore, EGR-1-expressing viruses potently inhibit cell invasion and vessel formation in the murine Matrigel model and repress tumor growth in a murine fibrosarcoma model. We propose that gene therapy involving sustained EGR-1 expression may constitute a novel therapeutic principle in the treatment of cancer due to the simultaneous induction of multiple pathways of antiangiogenesis, growth arrest, and apoptosis induction in proliferating cells leading to preferential inhibition of angiogenesis and tumor growth.
Insights
Sustained expression of early growth response protein-1 (EGR-1) inhibits tumor growth by inducing antiangiogenic and proapoptotic pathways. This gene therapy approach offers a novel strategy for cancer treatment by targeting tumor angiogenesis and cell proliferation.
Area of Science:
- Molecular Biology
- Cancer Research
- Gene Therapy
Background:
- Early growth response protein-1 (EGR-1) is induced by angiogenic factors like VEGF and bFGF, crucial for tumor growth.
- Tumors rely on angiogenesis, the formation of new blood vessels, for sustained growth.
Purpose of the Study:
- To investigate the effects of sustained EGR-1 expression on endothelial cells and tumor growth.
- To explore the potential of EGR-1 gene therapy for cancer treatment.
Main Methods:
- Utilized recombinant adenoviruses to achieve sustained EGR-1 expression in endothelial cells.
- Evaluated antiangiogenic, cell cycle, and apoptotic effects in vitro and in vivo.
- Assessed tumor growth inhibition in murine models.
Main Results:
- Sustained EGR-1 expression induced feedback inhibitory mechanisms, including transcriptional repressors and proapoptotic genes.
- Demonstrated an antiangiogenic state with inhibited sprouting and tubule formation.
- Showed potent inhibition of tumor growth, cell invasion, and vessel formation in vivo.
Conclusions:
- Sustained EGR-1 expression triggers multiple anti-cancer pathways, including antiangiogenesis, growth arrest, and apoptosis.
- EGR-1 gene therapy represents a promising therapeutic strategy for cancer by targeting tumor angiogenesis and proliferation.
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