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Updated: Aug 20, 2026

Induction of Hypoxia in Living Frog and Zebrafish Embryos
Published on: June 26, 2017
Insulin-like growth factor-binding protein-1 (IGFBP-1) mediates hypoxia-induced embryonic growth and developmental
Shingo Kajimura1, Katsumi Aida, Cunming Duan
1Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, MI 48109, USA.
Insights
Hypoxia causes embryonic growth retardation and developmental delays in zebrafish by increasing insulin-like growth factor binding protein 1 (IGFBP-1). This protein inhibits growth by blocking insulin-like growth factors (IGFs).
Area of Science:
- Developmental Biology
- Molecular Biology
- Zebrafish Models
Background:
- Reduced fetal growth due to hypoxia is known, but mechanisms affecting embryonic development are unclear.
- Hypoxia's impact on embryonic development and organ morphogenesis timing requires further investigation.
Purpose of the Study:
- To elucidate the cellular and molecular mechanisms of hypoxia's effects on embryonic development.
- To investigate the role of insulin-like growth factor binding protein 1 (IGFBP-1) in mediating hypoxia-induced embryonic growth retardation and developmental delay.
Main Methods:
- Hypoxia treatment of zebrafish embryos.
- Analysis of gene expression, including IGFBP-1, IGFs, and IGF receptors.
- Loss-of-function (knockdown) and gain-of-function (overexpression) studies of IGFBP-1.
- In vitro cell proliferation assays using cultured zebrafish embryonic cells.
Main Results:
- Hypoxia caused embryonic growth retardation and delayed organ morphogenesis in zebrafish.
- Hypoxia significantly induced IGFBP-1 expression without altering IGFs or their receptors.
- IGFBP-1 knockdown alleviated hypoxia-induced growth and developmental delays, while overexpression mimicked these effects under normoxia.
- IGFBP-1 inhibited IGF-stimulated cell proliferation in vitro, an effect reversed by excess IGFs.
Conclusions:
- Elevated IGFBP-1 mediates hypoxia-induced embryonic growth retardation and developmental delay by inhibiting IGF activity.
- IGFBP-1 acts as a crucial molecular link between hypoxic stress and restricted embryonic growth.
- Induction of IGFBP-1 is a conserved mechanism to limit growth under hypoxic conditions.
Abstract:
Although reduced fetal growth in response to hypoxia has been appreciated for decades, we have a poor understanding of the effects of hypoxia on embryonic development and the underlying cellular and molecular mechanisms. Here we show that hypoxia treatment not only resulted in embryonic growth retardation but also caused significant delay in developmental speed and the timing of morphogenesis in vital organs of zebrafish. Hypoxia strongly induced the expression of insulin-like growth factor (IGF)-binding protein (IGFBP)-1, a secreted protein that binds IGFs in extracellular environments. Hypoxia did not change the expression levels of IGFs, IGF receptors, or other IGFBPs. The hypothesis that elevated IGFBP-1 mediates hypoxia-induced embryonic growth retardation and developmental delay by binding to and inhibiting the activities of IGFs was tested by loss- and gain-of-function approaches. Knockdown of IGFBP-1 significantly alleviated the hypoxia-induced growth retardation and developmental delay. Overexpression of IGFBP-1 caused growth and developmental retardation under normoxia. Furthermore, reintroduction of IGFBP-1 to the IGFBP-1 knocked-down embryos restored the hypoxic effects on embryonic growth and development. When tested in vitro with cultured zebrafish embryonic cells, IGFBP-1 itself had no mitogenic activity, but it inhibited IGF-1- and IGF-2-stimulated cell proliferation. This inhibitory effect was abolished when IGF-1 or IGF-2 was added in molar excess, suggesting that IGFBP-1 inhibits embryonic growth and development by binding to and inhibiting the activities of IGFs. The induction of IGFBP-1 expression may be a conserved physiological mechanism to restrict the IGF-stimulated growth and developmental process under hypoxic stress.
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