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Published on: October 1, 2007
Fibroblast growth factor 8 regulates postnatal development of paraventricular nucleus neuroendocrine cells
Karla M Rodriguez1, Erica L Stevenson2, Courtney E Stewart3
1School of Biomedical Sciences, Kent State University, Kent, OH, 44242, USA. krodri10@kent.edu.
Insights
Fibroblast growth factor 8 (FGF8) signaling impacts hypothalamus-pituitary-adrenal (HPA) axis development. FGF8 hypomorphy alters stress responses and neuropeptide expression timing, potentially contributing to anxiety disorders.
Area of Science:
- Neuroscience
- Developmental Biology
- Endocrinology
Background:
- Fibroblast growth factors (FGFs) are critical for vertebrate brain development.
- FGF8 signaling is implicated in the development of the hypothalamus-pituitary-adrenal (HPA) axis.
- Fgf8 hypomorphic mice show reduced vasopressin (VP) neurons and increased anxiety-like behaviors.
Purpose of the Study:
- To investigate the effect of Fgf8 hypomorphy on VP and corticotropin-releasing hormone (CRH) neuron development in the paraventricular nucleus (PVN).
- To assess HPA axis responsiveness in Fgf8 hypomorphic mice under stress.
Main Methods:
- Immunohistochemistry to examine VP and CRH neurons in the PVN of postnatal day 21 and adult Fgf8 (+/neo) mice.
- Restraint stress (RS) paradigm to measure corticosterone levels via enzyme immunoassays.
Main Results:
- VP neuron numbers were similar in wildtype (WT) and Fgf8 (+/neo) mice at all ages.
- CRH immunoreactivity was elevated in Fgf8 (+/neo) mice at postnatal day 21 but not in adulthood.
- Adult Fgf8 (+/neo) mice showed a heightened corticosterone response to restraint stress at 15 minutes, but not 45 minutes.
Conclusions:
- Fgf8 hypomorphy does not eliminate VP and CRH neurons but disrupts their postnatal neuropeptide expression timing.
- Fgf8 hypomorphy may contribute to HPA axis hyperactivity observed in affective disorders like anxiety.
Background:
Fibroblast growth factors (FGFs) are crucial signaling molecules that direct the development of the vertebrate brain. FGF8 gene signaling in particular, may be important for the development of the hypothalamus-pituitary-adrenal (HPA)-axis. Indeed, newborn Fgf8 hypomorphic mice harbor a major reduction in the number of vasopressin (VP) neurons in the paraventricular nucleus (PVN), the central output component of the HPA-axis. Additionally, recent studies indicated that adult heterozygous ((+/neo)) Fgf8 hypomorphic mice exhibit more anxiety-like behaviors than wildtype (WT) mice. These studies led us to investigate whether Fgf8 hypomorphy abrogated VP and/or corticotropin-releasing hormone (CRH) neuronal development in the postnatal day (PN) 21 and adult mouse PVN. Furthermore, we studied whether Fgf8 hypomorphy disrupted HPA responsiveness in these mice.
Methods:
Using immunohistochemistry, we examined the development of VP and CRH neurons located in the PVN of PN 21 and adult Fgf8 (+/neo) mice. Moreover, we used a restraint stress (RS) paradigm and measured corticosterone levels with enzyme immunoassays in order to assess HPA axis activation.
Results:
The number of VP neurons in the PVN did not differ between WT and Fgf8 (+/neo) mice on PN 21 and in adulthood. In contrast, CRH immunoreactivity was much higher in Fgf8 (+/neo) mice than in WT mice on PN 21, this difference was no longer shown in adult mice. RS caused a higher increase in corticosterone levels in adult Fgf8 (+/neo) mice than in WT mice after 15 min, but no difference was seen after 45 min.
Conclusions:
First, Fgf8 hypomorphy did not eliminate VP and CRH neurons in the mouse PVN, but rather disrupted the postnatal timing of neuropeptide expression onset in PVN neurons. Second, Fgf8 hypomorphy may, in part, be an explanation for affective disorders involving hyperactivity of the HPA axis, such as anxiety.
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