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A Method for Mouse Pancreatic Islet Isolation and Intracellular cAMP Determination
Published on: June 25, 2014
Dynamics and Regulation of Insulin Secretion in Pancreatic Islets from Normal Young Children
Jean-Claude Henquin1, Myriam Nenquin1
1Unit of Endocrinology and Metabolism, Faculty of Medicine, University of Louvain, Brussels, Belgium.
Insights
Human infant islets show mature insulin secretion dynamics, similar to adults. Despite lower secretion rates, their responsiveness indicates functional maturity by one year old.
Area of Science:
- Endocrinology
- Pediatric Metabolism
- Cellular Physiology
Background:
- Insulin secretion in young children's pancreatic islets is understudied.
- Differences in cellular composition and β-cell replication exist between infant and adult islets.
Purpose of the Study:
- To investigate and compare insulin secretion dynamics in infant and adult pancreatic islets.
- To determine functional maturity of human β-cells in early life.
Main Methods:
- Isolation of pancreatic islets from 5 infants/toddlers (11-36 months old).
- Perifusion studies to analyze insulin secretion in response to various stimuli and inhibitors.
- Comparison of infant islet responses with previously reported adult islet data.
Main Results:
- Infant islets exhibited qualitatively similar responses to glucose, tolbutamide, forskolin, arginine, and leucine/glutamine as adult islets.
- Glucose-induced insulin secretion in infants showed similar concentration-dependency and biphasic patterns.
- Fractional insulin secretion rates were lower in infant islets, but stimulation indices were comparable due to lower basal secretion.
Conclusions:
- Human β-cells achieve functional maturity by one year of age, preceding complete mass expansion.
- Infant islet responsiveness (stimulation index) is comparable to adult islets.
- Lower basal and stimulated insulin secretion in infants reflects their reduced in vivo insulin requirements.
Abstract:
Insulin secretion has only exceptionally been investigated in pancreatic islets from healthy young children. It remains unclear whether those islets behave like adult islets despite substantial differences in cellular composition and higher β-cell replication rates. Islets were isolated from 5 infants/toddlers (11-36 month-old) and perifused to characterize their dynamics of insulin secretion when subjected to various stimuli and inhibitors. Their insulin responses were compared to those previously reported for similarly treated adult islets. Qualitatively, infant islets responded like adult islets to stimulation by glucose, tolbutamide, forskolin (to increase cAMP), arginine and the combination of leucine and glutamine, and to inhibition by diazoxide and CaCl2 omission. This similarity included the concentration-dependency and biphasic pattern of glucose-induced insulin secretion, the dynamics of the responses to non-glucose stimuli and metabolic amplification of these responses. The insulin content was not different, but fractional insulin secretion rates were lower in infant than adult islets irrespective of the stimulus. However, the stimulation index was similar because basal secretion rates were also lower in infant islets. In conclusion, human β-cells are functionally mature by the age of one year, before expansion of their mass is complete. Their responsiveness (stimulation index) to all stimuli is not smaller than that of adult β-cells. Yet, under basal and stimulated conditions, they secrete smaller proportions of their insulin stores in keeping with smaller in vivo insulin needs during infancy.
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