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Hyperinsulinemic-euglycemic Clamps in Conscious, Unrestrained Mice
Published on: November 16, 2011
Impaired hypothalamic regulation of endocrine function and delayed counterregulatory response to hypoglycemia in
Alysa A Tennese1, Rachel Wevrick
1Department of Medical Genetics, 8-16 Medical Sciences Building, University of Alberta, Edmonton, Alberta, Canada T6G 2H7.
Abstract:
Hypothalamic dysfunction may underlie endocrine abnormalities in Prader-Willi syndrome (PWS), a genetic disorder that features GH deficiency, obesity, and infertility. One of the genes typically inactivated in PWS, MAGEL2, is highly expressed in the hypothalamus. Mice deficient for Magel2 are obese with increased fat mass and decreased lean mass and have blunted circadian rhythm. Here, we demonstrate that Magel2-null mice have abnormalities of hypothalamic endocrine axes that recapitulate phenotypes in PWS. Magel2-null mice had elevated basal corticosterone levels, and although male Magel2-null mice had an intact corticosterone response to restraint and to insulin-induced hypoglycemia, female Magel2-null mice failed to respond to hypoglycemia with increased corticosterone. After insulin-induced hypoglycemia, Magel2-null mice of both sexes became more profoundly hypoglycemic, and female mice were slower to recover euglycemia, suggesting an impaired hypothalamic counterregulatory response. GH insufficiency can produce abnormal body composition, such as that seen in PWS and in Magel2-null mice. Male Magel2-null mice had Igf-I levels similar to control littermates. Female Magel2-null mice had low Igf-I levels and reduced GH release in response to stimulation with ghrelin. Female Magel2-null mice did respond to GHRH, suggesting that their GH deficiency has a hypothalamic rather than pituitary origin. Female Magel2-null mice also had higher serum adiponectin than expected, considering their increased fat mass, and thyroid (T(4)) levels were low. Together, these findings strongly suggest that loss of MAGEL2 contributes to endocrine dysfunction of hypothalamic origin in individuals with PWS.
Insights
Loss of the MAGEL2 gene in mice causes endocrine abnormalities, including obesity and impaired stress responses, mimicking Prader-Willi syndrome (PWS). This suggests MAGEL2 deficiency contributes to hypothalamic dysfunction in PWS patients.
Area of Science:
- Endocrinology
- Genetics
- Neuroscience
Background:
- Prader-Willi syndrome (PWS) is a genetic disorder associated with hypothalamic dysfunction, leading to GH deficiency, obesity, and infertility.
- The MAGEL2 gene, often inactivated in PWS, is highly expressed in the hypothalamus and its deficiency in mice recapitulates PWS phenotypes.
Purpose of the Study:
- To investigate the role of MAGEL2 in hypothalamic endocrine function.
- To determine if Magel2 deficiency in mice leads to endocrine abnormalities mirroring those seen in PWS.
Main Methods:
- Analysis of endocrine axes in Magel2-null mice.
- Assessment of corticosterone, growth hormone (GH), insulin-like growth factor 1 (Igf-I), and thyroid hormone levels.
- Evaluation of responses to hypoglycemia, restraint stress, ghrelin, and GHRH stimulation.
Main Results:
- Magel2-null mice exhibited elevated basal corticosterone and impaired counterregulatory responses to hypoglycemia, particularly females.
- Female Magel2-null mice showed GH deficiency of hypothalamic origin, indicated by low Igf-I and blunted GH release to ghrelin but normal response to GHRH.
- Low thyroid (T4) levels and altered adiponectin levels were observed in Magel2-null mice, alongside obesity and altered body composition.
Conclusions:
- Loss of MAGEL2 function in mice leads to significant hypothalamic endocrine dysfunction, recapitulating key features of PWS.
- These findings highlight MAGEL2's critical role in regulating hypothalamic-pituitary axes and suggest its inactivation is a key factor in PWS endocrine pathology.
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