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.

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