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Rat Mesentery Exteriorization: A Model for Investigating the Cellular Dynamics Involved in Angiogenesis
Published on: May 20, 2012
Transient mesenteric ischemia leads to remodeling of rat mesenteric resistance arteries
Laura Caracuel1, Francesc Jiménez-Altayó, Mónica Romo
1Departament de Farmacologia, Terapèutica i Toxicología, Universitat Autònoma de Barcelona Barcelona, Spain.
Abstract:
Mesenteric ischemia/reperfusion (I/R) is associated with high rates of morbidity and mortality. We studied the effect of mesenteric I/R on structural and mechanical properties of rat mesenteric resistance artery (MRA) that, once disrupted, might impact the outcome of this devastating clinical condition. Superior mesenteric artery from Wistar-Kyoto rats was occluded (90 min) and reperfused (24 h). The effect of tezosentan, a dual endothelin (ET)-receptor antagonist, was studied in ischemic (IO) and sham-operated (SO) animals. MRA structure and mechanics were assessed by pressure myography. Nuclei distribution, elastin content and organization, collagen I/III and ET-1 expression, ET-1 plasma levels, superoxide anion ([Formula: see text]) production, and mRNA levels of NAD(P)H-oxidase subunits were measured. To assess ET-1 effects on [Formula: see text] production, MRA from non-operated rats were incubated in culture medium with ET-1. Mesenteric I/R increased MRA wall thickness (P < 0.05) and cross-sectional area (P < 0.05) but decreased wall stiffness (P < 0.05). Arterial remodeling was paralleled by enhancement of: (i) collagen I/III expression (P < 0.01), ET-1 expression (P < 0.05), and [Formula: see text] formation (P < 0.01) in the vessel wall; (ii) number of internal elastic lamina (IEL) fenestrae (P < 0.05); and (iii) plasma levels of ET-1 (P < 0.05). Moreover, ET-1 increased [Formula: see text] (P < 0.05) production in cultured MRA. Tezosentan prevented hypertrophic remodeling and collagen I/III deposition, and enhanced [Formula: see text] production, but it did not affect the decreased wall stiffness after mesenteric I/R. These results indicate that 90 min occlusion/24 h reperfusion induces hypertrophic remodeling of MRA linked to ET-1-mediated increase of collagen and [Formula: see text]. Decreased stiffness may be associated with increased number of IEL fenestrae. The resulting MRA remodeling, initially adaptive, might become maladaptive contributing to the pathology and poor outcome of mesenteric I/R, and might be a valuable treatment target for mesenteric I/R.
Insights
Mesenteric ischemia/reperfusion (I/R) causes artery remodeling, increasing wall thickness and collagen via endothelin-1 (ET-1). Tezosentan treatment partially reversed these changes, suggesting ET-1 as a therapeutic target for I/R.
Area of Science:
- Vascular biology
- Gastroenterology
- Cardiovascular research
Background:
- Mesenteric ischemia/reperfusion (I/R) significantly increases patient morbidity and mortality.
- Understanding the arterial changes post-I/R is crucial for improving clinical outcomes.
Purpose of the Study:
- To investigate the impact of mesenteric I/R on the structural and mechanical properties of rat mesenteric resistance arteries (MRAs).
- To evaluate the therapeutic potential of tezosentan, a dual endothelin (ET)-receptor antagonist, in mitigating I/R-induced arterial alterations.
Main Methods:
- Mesenteric I/R was induced in Wistar-Kyoto rats via superior mesenteric artery occlusion (90 min) and reperfusion (24 h).
- MRA structure and mechanics were assessed using pressure myography.
- Vessel wall analysis included nuclei distribution, elastin and collagen content, ET-1 expression, superoxide anion production, and mRNA levels.
Main Results:
- Mesenteric I/R led to hypertrophic remodeling of MRAs, characterized by increased wall thickness and cross-sectional area, but decreased wall stiffness.
- Arterial remodeling was associated with elevated collagen I/III and ET-1 expression, increased superoxide anion production, and more internal elastic lamina fenestrae.
- Tezosentan treatment prevented hypertrophic remodeling and collagen deposition, and reduced superoxide anion production, but did not alter the decreased wall stiffness.
Conclusions:
- Mesenteric I/R induces significant hypertrophic remodeling of MRAs, mediated by ET-1-dependent increases in collagen and superoxide production.
- The observed decrease in arterial stiffness may be linked to increased fenestrae in the internal elastic lamina.
- Targeting ET-1 pathways represents a potential therapeutic strategy for managing mesenteric I/R-induced vascular damage and improving patient outcomes.
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