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Published on: September 28, 2015
Angiotensin II induces phenotype-dependent apoptosis in vascular smooth muscle cells
J L Bascands1, J P Girolami, M Troly
1INSERM U388, Institut Louis Bugnard, Toulouse, France.
Abstract:
Angiotensin II regulates vascular structure through growth and apoptosis, with implications in pathophysiology. Subtypes of vascular smooth muscle cells with specific morphology, growth, or apoptotic features have been isolated. Here, we investigated the effects of angiotensin II on apoptosis of 2 morphologically different rat aortic smooth muscle cell phenotypes. Spindle and epithelioid cell lines cultured under low serum conditions were stimulated by angiotensin II. Responsiveness was evaluated by calcium signaling. In both phenotypes, an angiotensin II type 1 receptor-mediated transient intracellular calcium peak arose from intracellular pools. However, a sustained nifedipine-sensitive calcium entry occurred specifically in epithelioid cells. Angiotensin II did not impair spindle cell survival, whereas a delayed reduction in cell number occurred in epithelioid cells. Cell death through apoptosis was characterized by cellular and nuclear morphology. Consistently, DNA fragmentation, evaluated by biochemical quantification, nuclei staining, and ladders, and caspase 3-like activity were promoted by angiotensin II in epithelioid cells. Kinetics of annexin V binding showed that apoptosis was a delayed process. Angiotensin II-induced apoptosis of epithelioid cells was prevented by angiotensin II type 1 but not type 2 receptor antagonists and was inhibited by a calcium chelator or calcium antagonist. Conversely, epithelioid cell apoptosis could be induced by a calcium ionophore. Thus, the death signaling promoted by angiotensin II in epithelioid cells involves type 1 receptor-mediated calcium entry. These data suggest that angiotensin II can promote angiotensin II type 1 receptor-mediated apoptosis in vascular smooth muscle cells, depending on their phenotype. This process may play a role in vascular remodeling in cardiovascular diseases.
Insights
Angiotensin II promotes apoptosis in specific rat aortic smooth muscle cells (epithelioid phenotype) via the angiotensin II type 1 receptor and calcium signaling, impacting vascular remodeling.
Area of Science:
- Cardiovascular Biology
- Cellular Physiology
- Molecular Medicine
Background:
- Angiotensin II influences vascular structure via smooth muscle cell growth and apoptosis.
- Distinct vascular smooth muscle cell phenotypes exhibit varied responses to stimuli.
- Understanding phenotype-specific apoptosis is crucial for cardiovascular pathophysiology.
Purpose of the Study:
- To investigate the impact of Angiotensin II on apoptosis in two distinct rat aortic smooth muscle cell phenotypes (spindle and epithelioid).
- To elucidate the role of calcium signaling and specific receptors in Angiotensin II-induced apoptosis.
- To determine the implications for vascular remodeling in cardiovascular diseases.
Main Methods:
- Culture and stimulation of spindle and epithelioid rat aortic smooth muscle cell lines with Angiotensin II.
- Evaluation of cellular responsiveness via calcium signaling assays.
- Assessment of apoptosis using morphological analysis, DNA fragmentation assays, caspase activity, and annexin V binding.
Main Results:
- Angiotensin II triggered transient calcium signaling in both phenotypes via the Angiotensin II type 1 receptor.
- Sustained calcium entry and delayed apoptosis, characterized by DNA fragmentation and caspase activation, occurred specifically in epithelioid cells.
- Angiotensin II-induced epithelioid cell apoptosis was mediated by the Angiotensin II type 1 receptor and calcium influx, and prevented by calcium antagonists.
Conclusions:
- Angiotensin II promotes apoptosis in a phenotype-dependent manner in vascular smooth muscle cells, specifically in epithelioid cells.
- The mechanism involves Angiotensin II type 1 receptor activation leading to calcium entry and subsequent cell death.
- This Angiotensin II-mediated apoptosis pathway may contribute to vascular remodeling in cardiovascular diseases.
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