Glucose-induced [Ca2+]i abnormalities in human pancreatic islets: important role of overstimulation - PubMed (original) (raw)
Glucose-induced [Ca2+]i abnormalities in human pancreatic islets: important role of overstimulation
A Björklund et al. Diabetes. 2000 Nov.
Abstract
Chronic hyperglycemia desensitizes beta-cells to glucose. To further define the mechanisms behind desensitization and the role of overstimulation, we tested human pancreatic islets for the effects of long-term elevated glucose levels on cytoplasmic free Ca2+ concentration ([Ca2+]i) and its relationship to overstimulation. Islets were cultured for 48 h with 5.5 or 27 mmol/l glucose. Culture with 27 mmol/l glucose obliterated postculture insulin responses to 27 mmol/l glucose. This desensitization was specific for glucose versus arginine. Desensitization was accompanied by three major [Ca2+]i abnormalities: 1) elevated basal [Ca2+]i, 2) loss of a glucose-induced rise in [Ca2+]i, and 3) perturbations of oscillatory activity with a decrease in glucose-induced slow oscillations (0.2-0.5 min(-1)). Coculture with 0.3 mmol/l diazoxide was performed to probe the role of overstimulation. Neither glucose nor diazoxide affected islet glucose utilization or oxidation. Coculture with diazoxide and 27 mmol/l glucose significantly (P < 0.05) restored postculture insulin responses to glucose and lowered basal [Ca2+]i and normalized glucose-induced oscillatory activity. However, diazoxide completely failed to revive an increase in [Ca2+]i during postculture glucose stimulation. In conclusion, desensitization of glucose-induced insulin secretion in human pancreatic islets is induced in parallel with major glucose-specific [Ca2+]i abnormalities. Overstimulation is an important but not exclusive factor behind [Ca2+]i abnormalities.
Similar articles
- Overstimulation and beta-cell function.
Grill V, Björklund A. Grill V, et al. Diabetes. 2001 Feb;50 Suppl 1:S122-4. doi: 10.2337/diabetes.50.2007.s122. Diabetes. 2001. PMID: 11272169 - Metabolic, cationic and secretory response to D-glucose in depolarized and Ca(2+)-deprived rat islets exposed to diazoxide.
Lebrun P, Antoine MH, Nguyen QA, Picton S, Malaisse WJ. Lebrun P, et al. Cell Calcium. 2000 Apr;27(4):213-22. doi: 10.1054/ceca.2000.0113. Cell Calcium. 2000. PMID: 10858667 - Generation of glucose-dependent slow oscillations of cytoplasmic Ca2+ in individual pancreatic beta cells.
Gylfe E, Grapengiesser E, Liu YJ, Dryselius S, Tengholm A, Eberhardson M. Gylfe E, et al. Diabetes Metab. 1998 Feb;24(1):25-9. Diabetes Metab. 1998. PMID: 9534005 Review. - Cytoplasmic Ca2+ oscillations in pancreatic beta-cells.
Hellman B, Gylfe E, Grapengiesser E, Lund PE, Berts A. Hellman B, et al. Biochim Biophys Acta. 1992 Dec 11;1113(3-4):295-305. doi: 10.1016/0304-4157(92)90003-s. Biochim Biophys Acta. 1992. PMID: 1450203 Review.
Cited by
- Mechanisms Linking Vitamin D Deficiency to Impaired Metabolism: An Overview.
Mohd Ghozali N, Giribabu N, Salleh N. Mohd Ghozali N, et al. Int J Endocrinol. 2022 Jul 6;2022:6453882. doi: 10.1155/2022/6453882. eCollection 2022. Int J Endocrinol. 2022. PMID: 35859985 Free PMC article. Review. - Impact of biotin supplemented diet on mouse pancreatic islet β-cell mass expansion and glucose induced electrical activity.
Morales-Reyes I, Atwater I, Esparza-Aguilar M, Pérez-Armendariz EM. Morales-Reyes I, et al. Islets. 2022 Dec 31;14(1):149-163. doi: 10.1080/19382014.2022.2091886. Islets. 2022. PMID: 35758027 Free PMC article. - The HDAC Inhibitor Butyrate Impairs β Cell Function and Activates the Disallowed Gene Hexokinase I.
Bridgeman S, Ellison G, Newsholme P, Mamotte C. Bridgeman S, et al. Int J Mol Sci. 2021 Dec 11;22(24):13330. doi: 10.3390/ijms222413330. Int J Mol Sci. 2021. PMID: 34948127 Free PMC article. - Hypovitaminosis D Is Associated with Some Metabolic Indices in Gestational Diabetes Mellitus.
Sonuga AA, Sonuga OO. Sonuga AA, et al. Biomed Hub. 2020 Jul 8;5(2):1177-1190. doi: 10.1159/000508207. eCollection 2020 May-Aug. Biomed Hub. 2020. PMID: 32884931 Free PMC article. - Wolfram Syndrome: a Monogenic Model to Study Diabetes Mellitus and Neurodegeneration.
Fischer TT, Ehrlich BE. Fischer TT, et al. Curr Opin Physiol. 2020 Oct;17:115-123. doi: 10.1016/j.cophys.2020.07.009. Epub 2020 Jul 15. Curr Opin Physiol. 2020. PMID: 32864536 Free PMC article.
Publication types
MeSH terms
Substances
LinkOut - more resources
Full Text Sources
Other Literature Sources
Miscellaneous