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Fetal Echocardiography and Pulsed-wave Doppler Ultrasound in a Rabbit Model of Intrauterine Growth Restriction
Published on: June 29, 2013
Uteroplacental insufficiency programs regional vascular dysfunction and alters arterial stiffness in female offspring
Marc Q Mazzuca1, Mary E Wlodek, Nicoleta M Dragomir
1Department of Physiology, School of Physics, University of Melbourne, Victoria, Australia.
Insights
Growth restriction in female offspring selectively impairs uterine artery function, increasing stiffness but not blood pressure. This selective dysfunction may impact future pregnancies.
Area of Science:
- Cardiovascular Physiology
- Developmental Biology
- Reproductive Medicine
Background:
- Intrauterine growth restriction (IUGR) due to uteroplacental insufficiency elevates adult cardiovascular disease risk.
- Vascular adaptations in female offspring experiencing IUGR remain incompletely understood.
Purpose of the Study:
- To investigate the impact of IUGR on blood pressure, vascular reactivity, and arterial stiffness in female rat offspring across four distinct vascular beds.
- To identify specific vascular mechanisms underlying IUGR-induced cardiovascular changes in females.
Main Methods:
- Uteroplacental insufficiency induced via bilateral uterine vessel ligation in Wistar Kyoto rats.
- Wire and pressure myography assessed endothelial and smooth muscle function in uterine, mesenteric, renal, and femoral arteries of 18-month-old female offspring.
- Collagen and elastin fiber composition analyzed using microscopy and qPCR.
Main Results:
- Growth-restricted females exhibited elevated plasma triglycerides and selective uterine artery endothelial dysfunction, linked to reduced endothelium-derived hyperpolarizing factor-mediated relaxation.
- Uterine arteries showed increased stiffness with altered collagen composition (more thick, less thin fibers).
- Mesenteric, renal, and femoral arteries maintained normal vascular reactivity and mechanical properties.
Conclusions:
- Female offspring born growth-restricted develop specific uterine artery endothelial dysfunction and increased arterial stiffness.
- Preserved vascular function in other arterial beds may explain the absence of hypertension in these offspring.
- Uterine artery dysfunction has implications for pregnancy adaptations and the health of subsequent generations.
Abstract:
Intrauterine growth restriction caused by uteroplacental insufficiency increases the risk of cardiovascular disease in adulthood. Vascular mechanisms in female offspring are poorly understood. The aim of this study was to investigate the effects of uteroplacental insufficiency on blood pressure, vascular reactivity and arterial stiffness in four vascular beds in female offspring born growth restricted. Uteroplacental insufficiency was induced on day 18 of gestation in Wistar Kyoto rats by bilateral uterine vessel ligation (Restricted) or sham surgery (Controls). Wire and pressure myography were used to test endothelial and smooth muscle function, and passive mechanical wall properties, respectively, in uterine, mesenteric, renal and femoral arteries of 18-month-old female offspring. Collagen and elastin fibres were quantified using circular crossed-polarized light microscopy and quantitative real time polymerase chain reaction. Restricted female offspring were born 10-15% smaller. Restricted females were normotensive, had plasma triglycerides 2-fold elevated and had uterine endothelial dysfunction, attributed to a 23% reduction in the maximal relaxation produced by endothelium-derived hyperpolarizing factor. Uterine artery stiffness was increased, with an augmented proportion of thick and decreased proportion of thin collagen fibres. Vascular reactivity and mechanical wall properties were preserved in mesenteric, renal and femoral arteries in growth restricted females. Female offspring born growth restricted have selective uterine artery endothelial dysfunction and increased wall stiffness. The preserved vascular function in other arteries may explain the lack of hypertension in these females. The uterine artery specific dysfunction has potential implications for impaired pregnancy adaptations and a compromised intrauterine environment of the next generation.
