Literature DB >> 21266413

Role of IGF signaling in catch-up growth and accelerated temporal development in zebrafish embryos in response to oxygen availability.

Hiroyasu Kamei1, Yonghe Ding, Shingo Kajimura, Michael Wells, Peter Chiang, Cunming Duan.   

Abstract

Animals respond to adverse environments by slowing down or arresting growth and development. Upon returning to normal conditions, they often show compensatory acceleration in growth and developmental rate. This phenomenon, known as `catch-up' growth, is widely documented in the animal kingdom. The underlying molecular mechanisms, however, are poorly understood. Using the zebrafish embryo as an experimental model system, we tested the hypothesis that changes in IGF signaling activities play an important role in the accelerated growth and temporal development resulting from re-oxygenation following hypoxia. We show that chronic hypoxia reduced, and re-oxygenation accelerated, embryonic growth and developmental rate. Whereas hypoxia repressed the Igf1 receptor and its downstream Erk1/2 and Akt signaling activities, re-oxygenation restored their activities. Specific inhibition of Igf1 receptor signaling during re-oxygenation by genetic and pharmacological approaches attenuated catch-up growth. Further analysis showed that whereas PI3K-Akt is required in both normal and catch-up growth, Mek1/2-Erk1/2 activation induced by elevated IGF signaling during re-oxygenation is particularly crucial for catch-up growth. These results suggest that the evolutionarily conserved IGF signaling pathway coordinates growth and temporal development in zebrafish embryos in response to oxygen availability.

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Year:  2011        PMID: 21266413     DOI: 10.1242/dev.056853

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.868


  28 in total

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Review 5.  Adenosine A₂a receptors and O₂ sensing in development.

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8.  A genome-wide screen identifies PAPP-AA-mediated IGFR signaling as a novel regulator of habituation learning.

Authors:  Marc A Wolman; Roshan A Jain; Kurt C Marsden; Hannah Bell; Julianne Skinner; Katharina E Hayer; John B Hogenesch; Michael Granato
Journal:  Neuron       Date:  2015-03-05       Impact factor: 17.173

9.  Calcium deficiency-induced and TRP channel-regulated IGF1R-PI3K-Akt signaling regulates abnormal epithelial cell proliferation.

Authors:  W Dai; Y Bai; L Hebda; X Zhong; J Liu; J Kao; C Duan
Journal:  Cell Death Differ       Date:  2013-12-13       Impact factor: 15.828

10.  Cardiac regeneration in model organisms.

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