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Updated: Mar 16, 2026

Induction of Hypoxia in Living Frog and Zebrafish Embryos
Published on: June 26, 2017
Hypoxia-induced contraction of chicken embryo mesenteric arteries: mechanisms and developmental changes
Leonie Brinks1, Rob M J Moonen1,2, Javier Moral-Sanz3
1Department of Pediatrics, Maastricht University Medical Center (MUMC+), School for Oncology and Developmental Biology (GROW), Maastricht, The Netherlands.
Insights
Hypoxia causes vasoconstriction in the mesenteric artery (MA) of chicken embryos and young chickens. This response, mediated by calcium and Rho-kinase pathways, develops during late embryogenesis and the perinatal period.
Area of Science:
- Cardiovascular Physiology
- Developmental Biology
- Vascular Pharmacology
Background:
- Fetal cardiovascular systems redistribute blood flow during hypoxia, prioritizing the brain and heart.
- The mesenteric artery's (MA) role in this hypoxic response is not fully understood.
Purpose of the Study:
- To investigate the direct effect of hypoxia on isolated chicken MAs.
- To characterize the mechanisms and developmental changes of hypoxic vasoconstriction in MAs.
Main Methods:
- Wire myography was used to assess MA responses to hypoxia in chicken embryos (E15-E21) and posthatch chickens (P1-P45).
- Pharmacological agents were used to probe the signaling pathways involved in hypoxic contraction.
Main Results:
- Hypoxia induced a biphasic contraction (phasic and tonic) in MAs, independent of endothelium or agonist-induced tone.
- Phasic contraction involved extracellular Ca2+, L-type voltage-gated Ca2+ channels, mitochondrial respiration, and NADPH oxidase.
- Rho-kinase inhibition impaired both contraction phases; combined with Ca2+ removal, it abolished contraction. Hypoxic MA contraction emerged at E19, peaked posthatching, and declined by P45.
Conclusions:
- Hypoxic vasoconstriction is an intrinsic property of chicken MA vascular smooth muscle cells.
- This response develops during late embryogenesis and the perinatal period, suggesting a role in cardiovascular adaptation.
Abstract:
The fetal cardiovascular responses to acute hypoxia include a redistribution of the cardiac output toward the heart and the brain at the expense of other organs, such as the intestine. We hypothesized that hypoxia exerts a direct effect on the mesenteric artery (MA) that may contribute to this response. Using wire myography, we investigated the response to hypoxia (Po2 ~2.5 kPa for 20 min) of isolated MAs from 15- to 21-day chicken embryos (E15, E19, E21), and 1- to 45-day-old chickens (P1, P3, P14, P45). Agonist-induced pretone or an intact endothelium were not required to obtain a consistent and reproducible response to hypoxia, which showed a pattern of initial rapid phasic contraction followed by a sustained tonic contraction. Phasic contraction was reduced by elimination of extracellular Ca2+ or by presence of the neurotoxin tetrodotoxin, the α1-adrenoceptor antagonist prazosin, or inhibitors of L-type voltage-gated Ca2+ channels (nifedipine), mitochondrial electron transport chain (rotenone and antimycin A), and NADPH oxidase (VAS2870). The Rho-kinase inhibitor Y27632 impaired both phasic and tonic contraction and, when combined with elimination of extracellular Ca2+, hypoxia-induced contraction was virtually abolished. Hypoxic MA contraction was absent at E15 but present from E19 and increased toward the first days posthatching. It then decreased during the first weeks of life and P45 MAs were unable to sustain hypoxia-induced contraction over time. In conclusion, the results of the present study demonstrate that hypoxic vasoconstriction is an intrinsic feature of chicken MA vascular smooth muscle cells during late embryogenesis and the perinatal period.
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