Joint pituitary-hypothalamic and intrahypothalamic autofeedback construct of pulsatile growth hormone secretion
- 1 November 2003
- journal article
- Published by American Physiological Society in American Journal of Physiology-Regulatory, Integrative and Comparative Physiology
- Vol. 285 (5) , R1240-R1249
- https://doi.org/10.1152/ajpregu.00086.2003
Abstract
Growth hormone (GH) secretion is vividly pulsatile in all mammalian species studied. In a simplified model, self-renewable GH pulsatility can be reproduced by assuming individual, reversible, time-delayed, and threshold-sensitive hypothalamic outflow of GH-releasing hormone (GHRH) and GH release-inhibiting hormone (somatostatin; SRIF). However, this basic concept fails to explicate an array of new experimental observations. Accordingly, here we formulate and implement a novel fourfold ensemble construct, wherein 1) systemic GH pulses stimulate long-latency, concentration-dependent secretion of periventricular-nuclear SRIF, thereby initially quenching and then releasing multiphasic GH volleys (recurrent every 3-3.5 h); 2) SRIF delivered to the anterior pituitary gland competitively antagonizes exocytotic release, but not synthesis, of GH during intervolley intervals; 3) arcuate-nucleus GHRH pulses drive the synthesis and accumulation of GH in saturable somatotrope stores; and 4) a purely intrahypothalamic mechanism sustains high-frequency GH pulses (intervals of 30-60 min) within a volley, assuming short-latency reciprocal coupling between GHRH and SRIF neurons (stimulatory direction) and SRIF and GHRH neurons (inhibitory direction). This two-oscillator formulation explicates (but does not prove) 1) the GHRH-sensitizing action of prior SRIF exposure; 2) a three-site (intrahypothalamic, hypothalamo-pituitary, and somatotrope GH store dependent) mechanism driving rebound-like GH secretion after SRIF withdrawal in the male; 3) an obligatory role for pituitary GH stores in representing rebound GH release in the female; 4) greater irregularity of SRIF than GH release profiles; and 5) a basis for the paradoxical GH-inhibiting action of centrally delivered GHRH.Keywords
This publication has 47 references indexed in Scilit:
- Gender and Sexual Maturation-Dependent Contrasts in the Neuroregulation of Growth Hormone Secretion in Prepubertal and Late Adolescent Males and Females--A General Clinical Research Center-Based StudyJournal of Clinical Endocrinology & Metabolism, 2000
- Pathophysiology of the Neuroregulation of Growth Hormone Secretion in Experimental Animals and the HumanEndocrine Reviews, 1998
- Endogenous growth hormone (GH)-releasing hormone is required for GH responses to pharmacological stimuli.Journal of Clinical Investigation, 1996
- Growth Hormone-Releasing Factor Regulation by Somatostatin, Growth Hormone and Insulin-Like Growth Factor I in Fetal Rat Hypothalamic-Brain Stem Cell CoculturesNeuroendocrinology, 1993
- Acute changes in growth hormone-releasing hormone secretion after injection of BIM 23014, a long acting somatostatin analog, in ramsLife Sciences, 1992
- Sexual Differentiation of Growth Hormone Feedback Effects on Hypothalamic Growth Hormone-Releasing Hormone and SomatostatinNeuroendocrinology, 1990
- Effects of Intracerebroventricular Administration of Growth Hormone-Releasing Factor and Corticotropin-Releasing Factor on Somatostatin Secretion into Rat Hypophysial Portal BloodNeuroendocrinology, 1990
- Combined Autoradiographic and Immunohistochemical Evidence for an Association of Somatostatin Binding Sites with Growth Hormone‐Releasing Factor‐Containing Nerve Cell Bodies in the Rat Arcuate NucleusJournal of Neuroendocrinology, 1989
- Hypothalamic growth hormone-releasing factor (GRF) participates in the negative feedback regulation of growth hormone secretionLife Sciences, 1989
- The rebound release of growth hormone (GH) following somatostatin infusion in rats involves hypothalamic GH-releasing factor releaseJournal of Endocrinology, 1988