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Published on: January 7, 2018
Chronic hypoxia stimulates periarterial sympathetic nerve development in chicken embryo
K Ruijtenbeek1, F A le Noble, G M Janssen
1Department of Pediatrics, Research Institute of Growth and Development (GROW), Universiteit Maastricht, Maastricht, The Netherlands.
Insights
Chronic prenatal hypoxia in chicken embryos increased arterial sympathetic innervation, potentially raising cardiovascular disease risk in adulthood. This study investigated the link between fetal oxygen levels and nerve development in arteries.
Area of Science:
- Developmental biology
- Cardiovascular physiology
- Neuroendocrinology
Background:
- Low birth weight is linked to adult coronary heart disease.
- Fetal development can be permanently altered by prenatal nutrient and oxygen imbalances.
- Prenatal hypoxia may affect fetal neuroendocrine development and arterial sympathetic innervation.
Purpose of the Study:
- To determine if chronic prenatal hypoxia increases arterial sympathetic innervation in chicken embryos.
- To investigate the impact of hypoxia on fetal development and cardiovascular system preparedness for adult life.
Main Methods:
- Chicken embryos were exposed to normoxic (21% O2) or hypoxic (15% O2) conditions during incubation.
- Sympathetic innervation of the embryonic femoral artery was assessed using biochemical, histological, and functional assays.
- Norepinephrine content and nerve fiber density were quantified, and in vitro contractile responses were measured.
Main Results:
- Hypoxia increased embryonic mortality and reduced fetal body weight.
- Femoral artery norepinephrine content and sympathetic nerve fiber density were elevated in hypoxic embryos.
- Arteries from hypoxic embryos showed reduced sensitivity to norepinephrine, which was normalized by blocking norepinephrine reuptake.
Conclusions:
- Chronic moderate prenatal hypoxia induces sympathetic hyperinnervation of the arterial system in chicken embryos.
- This mechanism may contribute to an increased risk of cardiovascular disease in humans born with similar developmental constraints.
Background:
Epidemiological findings suggest an association between low-for-age birth weight and the risk to develop coronary heart diseases in adulthood. During pregnancy, an imbalance between fetal demands and supply may result in permanent alterations of neuroendocrine development in the fetus. We evaluated whether chronic prenatal hypoxia increases arterial sympathetic innervation.
Methods And Results:
Chicken embryos were maintained from 0.3 to 0.9 of the 21-day incubation period under normoxic (21% O(2)) or hypoxic conditions (15% O(2)). At 0.9 incubation, the degree of sympathetic innervation of the embryonic femoral artery was determined by biochemical, histological, and functional (in vitro contractile reactivity) techniques. Chronic hypoxia increased embryonic mortality (32% versus 13%), reduced body weight (21.9+/-0.4 versus 25.4+/-0.6 g), increased femoral artery norepinephrine (NE) content (78.4+/-9.4 versus 57.5+/-5.0 pg/mm vessel length), and increased the density of periarterial sympathetic nerve fibers (14.4+/-0.7 versus 12.5+/-0.6 counts/10(4) microm(2)). Arteries from hypoxic embryos were less sensitive to NE (pD(2), 5.99+/-0.04 versus 6. 21+/-0.10). In the presence of cocaine, however, differences in sensitivity were no longer present. In the embryonic heart, NE content (156.9+/-11.0 versus 108.1+/-14.7 pg/mg wet wt) was also increased after chronic hypoxia.
Conclusions:
In the chicken embryo, chronic moderate hypoxia leads to sympathetic hyperinnervation of the arterial system. In humans, an analogous mechanism may increase the risk for cardiovascular disease in adult life.
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