Growth hormone and prolactin regulate human neural stem cell regenerative activity
P Pathipati1, T Gorba, A Scheepens
1Liggins Institute, University of Auckland, 2-6 Park Avenue, Grafton, Auckland, New Zealand. PathipatiP@neuropeds.ucsf.edu
Neuroscience
|June 14, 2011
Summary
Growth hormone (GH) and prolactin (PRL) stimulate neural stem cell (NSC) proliferation and migration. These hormones may play a role in brain injury recovery and neurorestoration.
Area of Science:
- Neuroscience
- Endocrinology
- Stem Cell Biology
Background:
- The growth hormone (GH)/prolactin (PRL) axis is implicated in brain neuroprotection and neurorestoration.
- These effects are partly mediated through actions on neural stem cells (NSCs).
Purpose of the Study:
- To investigate the effects of GH and PRL on human fetal neural stem cells (NSCs).
- To explore the roles of GH and PRL in NSC proliferation, differentiation, and migration.
Main Methods:
- Utilized human fetal forebrain-derived NSCs with radial glia properties.
- Applied exogenous GH and PRL to NSCs in vitro.
- Investigated proliferation and differentiation effects on neuronal and glial progenitors.
- Assessed NSC migration using receptor-specific antagonists.
Main Results:
- GH and PRL promoted NSC proliferation without growth factors.
- Both hormones induced neuronal progenitor proliferation; only PRL affected glial progenitors.
- GH and PRL enhanced NSC migration, particularly at higher concentrations.
- GH-induced migration was partly mediated via the PRL receptor.
Conclusions:
- GH and PRL exhibit complex stimulatory and modulatory effects on NSC activity.
- These hormones may contribute to brain injury recovery and neurorestorative processes.
- Further research is needed to elucidate the mechanisms of GH and PRL receptor signaling in NSC proliferation.
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