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Updated: Mar 22, 2026

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Induction of Hypoxia in Living Frog and Zebrafish Embryos
Published on: June 26, 2017
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Hypoxia-induced gene expression changes in N. vectensis embryos.
Sen Hadife1, Hongdi Wang1, Yayoi Hongo1
1Okinawa Institute of Science and Technology Graduate School, Evolutionary Neurobiology Unit, Okinawa, Japan.
Scientific Reports
|March 21, 2026
Summary
Early animal evolution was shaped by oxygen levels. Hypoxia, or low oxygen, causes reversible developmental arrest in Nematostella vectensis embryos, revealing conserved genetic responses shared with bilaterians.
Area of Science:
- Evolutionary biology
- Developmental biology
- Marine biology
Background:
- Oxygen availability is a key factor in metazoan evolution and diversification.
- Early metazoans evolved in variable redox environments, necessitating O2-responsive traits.
- Embryogenesis is a conserved developmental stage crucial for understanding adaptive trait evolution.
Purpose of the Study:
- To investigate the developmental and genetic responses of early metazoan embryos to hypoxia.
- To define how early embryos respond to fluctuating oxygen levels and understand adaptive mechanisms.
- To explore the role of embryogenesis in the evolution of metazoans under environmental change.
Main Methods:
- Utilized Nematostella vectensis embryos, a representative of early-diverging metazoans.
- Comprehensively investigated developmental responses to hypoxia.
- Performed transcriptomic profiling to analyze genetic responses to low oxygen conditions.
Main Results:
- Nematostella vectensis embryogenesis is oxygen-dependent.
- Hypoxia induces a reversible developmental arrest in N. vectensis embryos.
- Transcriptomic analysis revealed conserved hypoxia-responsive genes and pathways shared with bilaterians.
Conclusions:
- The genetic toolkit for embryonic hypoxia responses was present in the common cnidarian-bilaterian ancestor.
- Hypoxia response mechanisms in early metazoans are evolutionarily conserved.
- Understanding hypoxia responses in early embryos provides insights into metazoan adaptive evolution.

