Related Experiment Videos
Pituitary hormones as neurotrophic signals: anomalous hypophysiotrophic neuron differentiation in hypopituitary dwarf
1Department of Anatomy, Tulane University School of Medicine, New Orleans, Louisiana 70112.
Abstract:
Anterior pituitary hormones are known to exert dynamic negative feedback effects on their respective regulatory ("hypophysiotropic") neurons in the hypothalamus. The purpose of this review is to present the evidence for a theory that the effect of pituitary hormones on these hypophysiotropic neurons is neurotrophic, extending beyond dynamic feedback to influence upon cell survival, phenotypic differentiation, and axonal connectivity. To that end, the adult condition and the development of hypophysiotropic neurons in mutant mice which lack pituitary growth hormone (GH) and prolactin (PRL) are presented as models of the effect of absent specific neurotrophic signals. The expression of the neurohormones which inhibit PRL and GH secretion, dopamine (DA) and somatostatin, respectively, is markedly reduced in the hypothalamus of the hypopituitary dwarf mouse, and this adult condition is the result of postnatal failure to develop or actual regression, which may include neuronal cell death. The deficit in DA may be reversed by PRL replacement, but only if initiated at an identified critical postnatal period. Conversely, expression of the stimulatory GH-releasing hormone (GHRH) is markedly increased in the dwarf mouse hypothalamus. The loss of DA and the increase in GHRH occur in the same hypothalamic area, suggesting neuronal phenotypic plasticity in response to absence of pituitary feedback signals. The axonal terminations of extant GH- and PRL-regulating neurons in external median eminence appear to be reduced, suggesting that pituitary signals are required for appropriate axonal guidance during development, even though an endocrine vascular route intervenes between these regulatory neurons and their target secretory cells. The collective observations indicate that GH and PRL may be regarded as neurotrophic factors for their respective regulatory neurons in the hypothalamus.
Insights
Anterior pituitary hormones like growth hormone (GH) and prolactin (PRL) act as neurotrophic factors. They influence the survival, differentiation, and connectivity of hypothalamic neurons, extending beyond simple feedback loops.
Area of Science:
- Neuroendocrinology
- Developmental Neuroscience
- Molecular Endocrinology
Background:
- Anterior pituitary hormones traditionally exert negative feedback on hypothalamic neurons.
- This feedback mechanism is primarily understood as dynamic regulation of hormone secretion.
Purpose of the Study:
- To review evidence supporting a neurotrophic role for pituitary hormones on hypothalamic neurons.
- To explore the impact of pituitary hormones on neuronal survival, differentiation, and connectivity.
Main Methods:
- Utilized mutant mice lacking pituitary growth hormone (GH) and prolactin (PRL) as models.
- Examined the development and adult condition of hypophysiotropic neurons in these models.
Main Results:
- Reduced expression of dopamine (DA) and somatostatin in dwarf mouse hypothalamus, linked to developmental failure or regression.
- Increased expression of growth hormone-releasing hormone (GHRH) in the dwarf mouse hypothalamus.
- Evidence of impaired axonal connectivity and potential neuronal cell death in the absence of GH and PRL.
Conclusions:
- Growth hormone (GH) and prolactin (PRL) function as neurotrophic factors for hypothalamic regulatory neurons.
- Pituitary hormones are crucial for neuronal survival, phenotypic differentiation, and axonal guidance during development.
- Absence of pituitary signals can lead to developmental deficits and altered neuronal phenotypes.