Skip to main content
Top
Published in: Diabetologia 11/2010

01-11-2010 | Article

Glucolipotoxicity age-dependently impairs beta cell function in rats despite a marked increase in beta cell mass

Authors: G. Fontés, B. Zarrouki, D. K. Hagman, M. G. Latour, M. Semache, V. Roskens, P. C. Moore, M. Prentki, C. J. Rhodes, T. L. Jetton, V. Poitout

Published in: Diabetologia | Issue 11/2010

Login to get access

Abstract

Aims/hypothesis

Prolonged exposure of pancreatic beta cells to excessive levels of glucose and fatty acids, referred to as glucolipotoxicity, is postulated to contribute to impaired glucose homeostasis in patients with type 2 diabetes. However, the relative contribution of defective beta cell function vs diminished beta cell mass under glucolipotoxic conditions in vivo remains a subject of debate. We therefore sought to determine whether glucolipotoxicity in rats is due to impaired beta cell function and/or reduced beta cell mass, and whether older animals are more susceptible to glucolipotoxic condition.

Methods

Wistar rats (2 and 6 months old) received a 72 h infusion of glucose + intravenous fat emulsion or saline control. In vivo insulin secretion and sensitivity were assessed by hyperglycaemic clamps. Ex vivo insulin secretion, insulin biosynthesis and gene expression were measured in isolated islets. Beta cell mass and proliferation were examined by immunohistochemistry.

Results

A 72 h infusion of glucose + intravenous fat emulsion in 2-month-old Wistar rats did not affect insulin sensitivity, insulin secretion or beta cell mass. In 6-month-old rats by contrast it led to insulin resistance and reduced insulin secretion in vivo, despite an increase in beta cell mass and proliferation. This was associated with: (1) diminished glucose-stimulated second-phase insulin secretion and proinsulin biosynthesis; (2) lower insulin content; and (3) reduced expression of beta cell genes in isolated islets.

Conclusions/interpretation

In this in vivo model, glucolipotoxicity is characterised by an age-dependent impairment of glucose-regulated beta cell function despite a marked increase in beta cell mass.
Appendix
Available only for authorised users
Literature
1.
go back to reference Prentki M, Nolan CJ (2006) Islet beta cell failure in type 2 diabetes. J Clin Invest 116:1802–1812CrossRefPubMed Prentki M, Nolan CJ (2006) Islet beta cell failure in type 2 diabetes. J Clin Invest 116:1802–1812CrossRefPubMed
2.
go back to reference Robertson RP (2004) Chronic oxidative stress as a central mechanism for glucose toxicity in pancreatic islet beta cells in diabetes. J Biol Chem 279:42351–42354CrossRefPubMed Robertson RP (2004) Chronic oxidative stress as a central mechanism for glucose toxicity in pancreatic islet beta cells in diabetes. J Biol Chem 279:42351–42354CrossRefPubMed
3.
go back to reference Unger RH (1995) Lipotoxicity in the pathogenesis of obesity-dependent NIDDM. Genetic and clinical implications. Diabetes 44:863–870CrossRefPubMed Unger RH (1995) Lipotoxicity in the pathogenesis of obesity-dependent NIDDM. Genetic and clinical implications. Diabetes 44:863–870CrossRefPubMed
4.
go back to reference Prentki M, Corkey BE (1996) Are the ß-cell signaling molecules malonyl-CoA and cytosolic long-chain acyl-CoA implicated in multiple tissue defects of obesity and NIDDM? Diabetes 45:273–283CrossRefPubMed Prentki M, Corkey BE (1996) Are the ß-cell signaling molecules malonyl-CoA and cytosolic long-chain acyl-CoA implicated in multiple tissue defects of obesity and NIDDM? Diabetes 45:273–283CrossRefPubMed
5.
go back to reference Poitout V, Robertson RP (2002) Minireview: secondary beta-cell failure in type 2 diabetes—a convergence of glucotoxicity and lipotoxicity. Endocrinology 143:339–342CrossRefPubMed Poitout V, Robertson RP (2002) Minireview: secondary beta-cell failure in type 2 diabetes—a convergence of glucotoxicity and lipotoxicity. Endocrinology 143:339–342CrossRefPubMed
6.
go back to reference Mason TM, Goh T, Tchipashvili V et al (1999) Prolonged elevation of plasma free fatty acids desensitizes the insulin secretory response to glucose in vivo in rats. Diabetes 48:524–530CrossRefPubMed Mason TM, Goh T, Tchipashvili V et al (1999) Prolonged elevation of plasma free fatty acids desensitizes the insulin secretory response to glucose in vivo in rats. Diabetes 48:524–530CrossRefPubMed
7.
go back to reference Goh TT, Mason TM, Gupta N et al (2007) Lipid-induced beta-cell dysfunction in vivo in models of progressive beta-cell failure. Am J Physiol Endocrinol Metab 292:E549–E560CrossRefPubMed Goh TT, Mason TM, Gupta N et al (2007) Lipid-induced beta-cell dysfunction in vivo in models of progressive beta-cell failure. Am J Physiol Endocrinol Metab 292:E549–E560CrossRefPubMed
8.
go back to reference Oprescu AI, Bikopoulos G, Naassan A et al (2007) Free fatty acid-induced reduction in glucose-stimulated insulin secretion: evidence for a role of oxidative stress in vitro and in vivo. Diabetes 56:2927–2937CrossRefPubMed Oprescu AI, Bikopoulos G, Naassan A et al (2007) Free fatty acid-induced reduction in glucose-stimulated insulin secretion: evidence for a role of oxidative stress in vitro and in vivo. Diabetes 56:2927–2937CrossRefPubMed
9.
go back to reference Sako Y, Grill VE (1990) A 48-hour lipid infusion in the rat time-dependently inhibits glucose-induced insulin secretion and ß-cell oxidation through a process likely coupled to fatty acid oxidation. Endocrinology 127:1580–1589CrossRefPubMed Sako Y, Grill VE (1990) A 48-hour lipid infusion in the rat time-dependently inhibits glucose-induced insulin secretion and ß-cell oxidation through a process likely coupled to fatty acid oxidation. Endocrinology 127:1580–1589CrossRefPubMed
10.
go back to reference Magnan C, Collins S, Berthault MF et al (1999) Lipid infusion lowers sympathetic nervous activity and leads to increased beta-cell responsiveness to glucose. J Clin Invest 103:413–419CrossRefPubMed Magnan C, Collins S, Berthault MF et al (1999) Lipid infusion lowers sympathetic nervous activity and leads to increased beta-cell responsiveness to glucose. J Clin Invest 103:413–419CrossRefPubMed
11.
go back to reference Steil GM, Trivedi N, Jonas JC et al (2001) Adaptation of beta-cell mass to substrate oversupply: enhanced function with normal gene expression. Am J Physiol Endocrinol Metab 280:E788–E796PubMed Steil GM, Trivedi N, Jonas JC et al (2001) Adaptation of beta-cell mass to substrate oversupply: enhanced function with normal gene expression. Am J Physiol Endocrinol Metab 280:E788–E796PubMed
12.
go back to reference Hagman DK, Latour MG, Chakrabarti SK et al (2008) Cyclical and alternating infusions of glucose and intralipid in rats inhibit insulin gene expression and Pdx-1 binding in islets. Diabetes 57:424–431CrossRefPubMed Hagman DK, Latour MG, Chakrabarti SK et al (2008) Cyclical and alternating infusions of glucose and intralipid in rats inhibit insulin gene expression and Pdx-1 binding in islets. Diabetes 57:424–431CrossRefPubMed
13.
go back to reference Utzschneider KM, Carr DB, Hull RL et al (2004) Impact of intra-abdominal fat and age on insulin sensitivity and ß-cell function. Diabetes 53:2867–2872CrossRefPubMed Utzschneider KM, Carr DB, Hull RL et al (2004) Impact of intra-abdominal fat and age on insulin sensitivity and ß-cell function. Diabetes 53:2867–2872CrossRefPubMed
14.
go back to reference Kelpe CL, Johnson LM, Poitout V (2002) Increasing triglyceride synthesis inhibits glucose-induced insulin secretion in isolated rat islets of Langerhans. A study using adenoviral expression of diacylglycerol acyltransferase. Endocrinology 143:3326–3332CrossRefPubMed Kelpe CL, Johnson LM, Poitout V (2002) Increasing triglyceride synthesis inhibits glucose-induced insulin secretion in isolated rat islets of Langerhans. A study using adenoviral expression of diacylglycerol acyltransferase. Endocrinology 143:3326–3332CrossRefPubMed
15.
go back to reference Bollheimer LC, Skelly RH, Chester MW, McGarry JD, Rhodes CJ (1998) Chronic exposure to free fatty acid reduces pancreatic beta cell insulin content by increasing basal insulin secretion that is not compensated for by a corresponding increase in proinsulin biosynthesis translation. J Clin Invest 101:1094–1101CrossRefPubMed Bollheimer LC, Skelly RH, Chester MW, McGarry JD, Rhodes CJ (1998) Chronic exposure to free fatty acid reduces pancreatic beta cell insulin content by increasing basal insulin secretion that is not compensated for by a corresponding increase in proinsulin biosynthesis translation. J Clin Invest 101:1094–1101CrossRefPubMed
16.
go back to reference Jetton TL, Lausier J, LaRock K et al (2005) Mechanisms of compensatory beta-cell growth in insulin-resistant rats: roles of Akt kinase. Diabetes 54:2294–2304CrossRefPubMed Jetton TL, Lausier J, LaRock K et al (2005) Mechanisms of compensatory beta-cell growth in insulin-resistant rats: roles of Akt kinase. Diabetes 54:2294–2304CrossRefPubMed
17.
go back to reference Zawalich WS, Yamazaki H, Zawalich KC (2008) Biphasic insulin secretion from freshly isolated or cultured, perifused rodent islets: comparative studies with rats and mice. Metabolism 57:30–39CrossRefPubMed Zawalich WS, Yamazaki H, Zawalich KC (2008) Biphasic insulin secretion from freshly isolated or cultured, perifused rodent islets: comparative studies with rats and mice. Metabolism 57:30–39CrossRefPubMed
18.
go back to reference Lottmann H, Vanselow J, Hessabi B, Walther R (2001) The Tet-On system in transgenic mice: inhibition of the mouse pdx-1 gene activity by antisense RNA expression in pancreatic beta-cells. J Mol Med 79:321–328CrossRefPubMed Lottmann H, Vanselow J, Hessabi B, Walther R (2001) The Tet-On system in transgenic mice: inhibition of the mouse pdx-1 gene activity by antisense RNA expression in pancreatic beta-cells. J Mol Med 79:321–328CrossRefPubMed
19.
go back to reference Fontes G, Semache M, Hagman DK et al (2009) Involvement of Per-Arnt-Sim kinase and extracellular-regulated kinases-1/2 in palmitate inhibition of insulin gene expression in pancreatic beta-cells. Diabetes 58:2048–2058CrossRefPubMed Fontes G, Semache M, Hagman DK et al (2009) Involvement of Per-Arnt-Sim kinase and extracellular-regulated kinases-1/2 in palmitate inhibition of insulin gene expression in pancreatic beta-cells. Diabetes 58:2048–2058CrossRefPubMed
20.
go back to reference Lawrence MC, McGlynn K, Park BH, Cobb MH (2005) ERK1/2-dependent activation of transcription factors required for acute and chronic effects of glucose on the insulin gene promoter. J Biol Chem 280:26751–26759CrossRefPubMed Lawrence MC, McGlynn K, Park BH, Cobb MH (2005) ERK1/2-dependent activation of transcription factors required for acute and chronic effects of glucose on the insulin gene promoter. J Biol Chem 280:26751–26759CrossRefPubMed
21.
go back to reference Sako Y, Grill VE (1990) Coupling of ß-cell desensitization by hyperglycemia to excessive stimulation and circulating insulin in glucose-infused rats. Diabetes 39:1580–1583CrossRefPubMed Sako Y, Grill VE (1990) Coupling of ß-cell desensitization by hyperglycemia to excessive stimulation and circulating insulin in glucose-infused rats. Diabetes 39:1580–1583CrossRefPubMed
22.
go back to reference Bernard C, Thibault C, Berthault MF et al (1998) Pancreatic beta-cell regeneration after 48-h glucose infusion in mildly diabetic rats is not correlated with functional improvement. Diabetes 47:1058–1065CrossRefPubMed Bernard C, Thibault C, Berthault MF et al (1998) Pancreatic beta-cell regeneration after 48-h glucose infusion in mildly diabetic rats is not correlated with functional improvement. Diabetes 47:1058–1065CrossRefPubMed
23.
go back to reference de Souza CJ, Capotorto JV, Cornell-Kennon S et al (2000) Beta-cell dysfunction in 48-hour glucose-infused rats is not a consequence of elevated plasma lipid or islet triglyceride levels. Metabolism 49:755–759CrossRefPubMed de Souza CJ, Capotorto JV, Cornell-Kennon S et al (2000) Beta-cell dysfunction in 48-hour glucose-infused rats is not a consequence of elevated plasma lipid or islet triglyceride levels. Metabolism 49:755–759CrossRefPubMed
24.
go back to reference Paris M, Bernard-Kargar C, Berthault MF, Bouwens L, Ktorza A (2003) Specific and combined effects of insulin and glucose on functional pancreatic beta-cell mass in vivo in adult rats. Endocrinology 144:2717–2727CrossRefPubMed Paris M, Bernard-Kargar C, Berthault MF, Bouwens L, Ktorza A (2003) Specific and combined effects of insulin and glucose on functional pancreatic beta-cell mass in vivo in adult rats. Endocrinology 144:2717–2727CrossRefPubMed
25.
go back to reference Topp BG, McArthur MD, Finegood DT (2004) Metabolic adaptations to chronic glucose infusion in rats. Diabetologia 47:1602–1610CrossRefPubMed Topp BG, McArthur MD, Finegood DT (2004) Metabolic adaptations to chronic glucose infusion in rats. Diabetologia 47:1602–1610CrossRefPubMed
26.
go back to reference Boden G, Chen X, Rosner J, Barton M (1995) Effects of a 48 h fat infusion on insulin secretion and glucose utilization. Diabetes 44:1239–1242CrossRefPubMed Boden G, Chen X, Rosner J, Barton M (1995) Effects of a 48 h fat infusion on insulin secretion and glucose utilization. Diabetes 44:1239–1242CrossRefPubMed
27.
go back to reference Jensen CB, Storgaard H, Holst JJ, Dela F, Madsbad S, Vaag AA (2003) Insulin secretion and cellular glucose metabolism after prolonged low-grade intralipid infusion in young men. J Clin Endocrinol Metab 88:2775–2783CrossRefPubMed Jensen CB, Storgaard H, Holst JJ, Dela F, Madsbad S, Vaag AA (2003) Insulin secretion and cellular glucose metabolism after prolonged low-grade intralipid infusion in young men. J Clin Endocrinol Metab 88:2775–2783CrossRefPubMed
28.
go back to reference Kashyap S, Belfort R, Gastaldelli A et al (2003) A sustained increase in plasma free fatty acids impairs insulin secretion in nondiabetic subjects genetically predisposed to develop type 2 diabetes. Diabetes 52:2461–2474CrossRefPubMed Kashyap S, Belfort R, Gastaldelli A et al (2003) A sustained increase in plasma free fatty acids impairs insulin secretion in nondiabetic subjects genetically predisposed to develop type 2 diabetes. Diabetes 52:2461–2474CrossRefPubMed
29.
go back to reference Carpentier A, Mittelman SD, Bergman RN, Giacca A, Lewis GF (2000) Prolonged elevation of plasma free fatty acids impairs pancreatic beta-cell function in obese nondiabetic humans but not in individuals with type 2 diabetes. Diabetes 49:399–408CrossRefPubMed Carpentier A, Mittelman SD, Bergman RN, Giacca A, Lewis GF (2000) Prolonged elevation of plasma free fatty acids impairs pancreatic beta-cell function in obese nondiabetic humans but not in individuals with type 2 diabetes. Diabetes 49:399–408CrossRefPubMed
30.
go back to reference Carpentier A, Giacca A, Lewis GF (2001) Effect of increased plasma non-esterified fatty acids (NEFAs) on arginine-stimulated insulin secretion in obese humans. Diabetologia 44:1989–1997CrossRefPubMed Carpentier A, Giacca A, Lewis GF (2001) Effect of increased plasma non-esterified fatty acids (NEFAs) on arginine-stimulated insulin secretion in obese humans. Diabetologia 44:1989–1997CrossRefPubMed
31.
go back to reference Leung N, Sakaue T, Carpentier A, Uffelman K, Giacca A, Lewis GF (2004) Prolonged increase of plasma non-esterified fatty acids fully abolishes the stimulatory effect of 24 hours of moderate hyperglycaemia on insulin sensitivity and pancreatic beta-cell function in obese men. Diabetologia 47:204–213CrossRefPubMed Leung N, Sakaue T, Carpentier A, Uffelman K, Giacca A, Lewis GF (2004) Prolonged increase of plasma non-esterified fatty acids fully abolishes the stimulatory effect of 24 hours of moderate hyperglycaemia on insulin sensitivity and pancreatic beta-cell function in obese men. Diabetologia 47:204–213CrossRefPubMed
32.
go back to reference Carpentier AC, Bourbonnais A, Frisch F, Giacca A, Lewis GF (2010) Plasma nonesterified fatty acid intolerance and hyperglycemia are associated with intravenous lipid-induced impairment of insulin sensitivity and disposition index. J Clin Endocrinol Metab 95:1256–1264CrossRefPubMed Carpentier AC, Bourbonnais A, Frisch F, Giacca A, Lewis GF (2010) Plasma nonesterified fatty acid intolerance and hyperglycemia are associated with intravenous lipid-induced impairment of insulin sensitivity and disposition index. J Clin Endocrinol Metab 95:1256–1264CrossRefPubMed
33.
go back to reference Maedler K, Spinas GA, Dyntar D, Moritz W, Kaiser N, Donath MY (2001) Distinct effects of saturated and monounsaturated fatty acids on beta-cell turnover and function. Diabetes 50:69–76CrossRefPubMed Maedler K, Spinas GA, Dyntar D, Moritz W, Kaiser N, Donath MY (2001) Distinct effects of saturated and monounsaturated fatty acids on beta-cell turnover and function. Diabetes 50:69–76CrossRefPubMed
34.
go back to reference Lupi R, Dotta F, Marselli L et al (2002) Prolonged exposure to free fatty acids has cytostatic and pro-apoptotic effects on human pancreatic islets: evidence that beta-cell death is caspase mediated, partially dependent on ceramide pathway, and Bcl-2 regulated. Diabetes 51:1437–1442CrossRefPubMed Lupi R, Dotta F, Marselli L et al (2002) Prolonged exposure to free fatty acids has cytostatic and pro-apoptotic effects on human pancreatic islets: evidence that beta-cell death is caspase mediated, partially dependent on ceramide pathway, and Bcl-2 regulated. Diabetes 51:1437–1442CrossRefPubMed
35.
go back to reference Piro S, Anello M, Di Pietro C et al (2002) Chronic exposure to free fatty acids or high glucose induces apoptosis in rat pancreatic islets: possible role of oxidative stress. Metabolism 51:1340–1347CrossRefPubMed Piro S, Anello M, Di Pietro C et al (2002) Chronic exposure to free fatty acids or high glucose induces apoptosis in rat pancreatic islets: possible role of oxidative stress. Metabolism 51:1340–1347CrossRefPubMed
36.
go back to reference El-Assaad W, Buteau J, Peyot ML et al (2003) Saturated fatty acids synergize with elevated glucose to cause pancreatic beta-cell death. Endocrinology 144:4154–4163CrossRefPubMed El-Assaad W, Buteau J, Peyot ML et al (2003) Saturated fatty acids synergize with elevated glucose to cause pancreatic beta-cell death. Endocrinology 144:4154–4163CrossRefPubMed
37.
go back to reference Kharroubi I, Ladriere L, Cardozo AK, Dogusan Z, Cnop M, Eizirik DL (2004) Free fatty acids and cytokines induce pancreatic beta-cell apoptosis by different mechanisms: role of nuclear factor-kappaB and endoplasmic reticulum stress. Endocrinology 145:5087–5096CrossRefPubMed Kharroubi I, Ladriere L, Cardozo AK, Dogusan Z, Cnop M, Eizirik DL (2004) Free fatty acids and cytokines induce pancreatic beta-cell apoptosis by different mechanisms: role of nuclear factor-kappaB and endoplasmic reticulum stress. Endocrinology 145:5087–5096CrossRefPubMed
38.
go back to reference Laybutt DR, Preston AM, Akerfeldt MC et al (2007) Endoplasmic reticulum stress contributes to beta cell apoptosis in type 2 diabetes. Diabetologia 50:752–763CrossRefPubMed Laybutt DR, Preston AM, Akerfeldt MC et al (2007) Endoplasmic reticulum stress contributes to beta cell apoptosis in type 2 diabetes. Diabetologia 50:752–763CrossRefPubMed
39.
go back to reference Jacqueminet S, Briaud I, Rouault C, Reach G, Poitout V (2000) Inhibition of insulin gene expression by long-term exposure of pancreatic beta-cells to palmitate is dependent upon the presence of a stimulatory glucose concentration. Metabolism 49:532–536CrossRefPubMed Jacqueminet S, Briaud I, Rouault C, Reach G, Poitout V (2000) Inhibition of insulin gene expression by long-term exposure of pancreatic beta-cells to palmitate is dependent upon the presence of a stimulatory glucose concentration. Metabolism 49:532–536CrossRefPubMed
40.
go back to reference Briaud I, Harmon JS, Kelpe CL, Segu VB, Poitout V (2001) Lipotoxicity of the pancreatic beta-cell is associated with glucose-dependent esterification of fatty acids into neutral lipids. Diabetes 50:315–321CrossRefPubMed Briaud I, Harmon JS, Kelpe CL, Segu VB, Poitout V (2001) Lipotoxicity of the pancreatic beta-cell is associated with glucose-dependent esterification of fatty acids into neutral lipids. Diabetes 50:315–321CrossRefPubMed
41.
go back to reference Kelpe CL, Moore PC, Parazzoli SD, Wicksteed B, Rhodes CJ, Poitout V (2003) Palmitate inhibition of insulin gene expression is mediated at the transcriptional level via ceramide synthesis. J Biol Chem 278:30015–30021CrossRefPubMed Kelpe CL, Moore PC, Parazzoli SD, Wicksteed B, Rhodes CJ, Poitout V (2003) Palmitate inhibition of insulin gene expression is mediated at the transcriptional level via ceramide synthesis. J Biol Chem 278:30015–30021CrossRefPubMed
42.
go back to reference Hagman DK, Hays LB, Parazzoli SD, Poitout V (2005) Palmitate inhibits insulin gene expression by altering PDX-1 nuclear localization and reducing MafA expression in isolated rat islets of Langerhans. J Biol Chem 280:32413–32418CrossRefPubMed Hagman DK, Hays LB, Parazzoli SD, Poitout V (2005) Palmitate inhibits insulin gene expression by altering PDX-1 nuclear localization and reducing MafA expression in isolated rat islets of Langerhans. J Biol Chem 280:32413–32418CrossRefPubMed
43.
go back to reference Seaquist ER, Robertson RP (1992) Effects of hemipancreatectomy on pancreatic alpha and beta cell function in healthy human donors. J Clin Invest 89:1761–1766CrossRefPubMed Seaquist ER, Robertson RP (1992) Effects of hemipancreatectomy on pancreatic alpha and beta cell function in healthy human donors. J Clin Invest 89:1761–1766CrossRefPubMed
44.
go back to reference Rankin MM, Kushner JA (2009) Adaptive beta-cell proliferation is severely restricted with advanced age. Diabetes 58:1365–1372CrossRefPubMed Rankin MM, Kushner JA (2009) Adaptive beta-cell proliferation is severely restricted with advanced age. Diabetes 58:1365–1372CrossRefPubMed
45.
go back to reference Tschen SI, Dhawan S, Gurlo T, Bhushan A (2009) Age-dependent decline in beta-cell proliferation restricts the capacity of beta-cell regeneration in mice. Diabetes 58:1312–1320CrossRefPubMed Tschen SI, Dhawan S, Gurlo T, Bhushan A (2009) Age-dependent decline in beta-cell proliferation restricts the capacity of beta-cell regeneration in mice. Diabetes 58:1312–1320CrossRefPubMed
46.
go back to reference Wang ZV, Mu J, Schraw TD et al (2008) PANIC-ATTAC: a mouse model for inducible and reversible beta-cell ablation. Diabetes 57:2137–2148CrossRefPubMed Wang ZV, Mu J, Schraw TD et al (2008) PANIC-ATTAC: a mouse model for inducible and reversible beta-cell ablation. Diabetes 57:2137–2148CrossRefPubMed
47.
go back to reference Kargar C, Ktorza A (2008) Anatomical vs functional beta-cell mass in experimental diabetes. Diabetes Obes Metab 10(Suppl 4):43–53CrossRefPubMed Kargar C, Ktorza A (2008) Anatomical vs functional beta-cell mass in experimental diabetes. Diabetes Obes Metab 10(Suppl 4):43–53CrossRefPubMed
48.
go back to reference Delghingaro-Augusto V, Nolan CJ, Gupta D et al (2009) Islet beta cell failure in the 60% pancreatectomised obese hyperlipidaemic Zucker fatty rat: severe dysfunction with altered glycerolipid metabolism without steatosis or a falling beta cell mass. Diabetologia 52:1122–1132CrossRefPubMed Delghingaro-Augusto V, Nolan CJ, Gupta D et al (2009) Islet beta cell failure in the 60% pancreatectomised obese hyperlipidaemic Zucker fatty rat: severe dysfunction with altered glycerolipid metabolism without steatosis or a falling beta cell mass. Diabetologia 52:1122–1132CrossRefPubMed
49.
go back to reference Kulkarni RN, Jhala US, Winnay JN, Krajewski S, Montminy M, Kahn CR (2004) PDX-1 haploinsufficiency limits the compensatory islet hyperplasia that occurs in response to insulin resistance. J Clin Invest 114:828–836PubMed Kulkarni RN, Jhala US, Winnay JN, Krajewski S, Montminy M, Kahn CR (2004) PDX-1 haploinsufficiency limits the compensatory islet hyperplasia that occurs in response to insulin resistance. J Clin Invest 114:828–836PubMed
50.
go back to reference Sachdeva MM, Claiborn KC, Khoo C et al (2009) Pdx1 (MODY4) regulates pancreatic beta cell susceptibility to ER stress. Proc Natl Acad Sci U S A 106:19090–19095CrossRefPubMed Sachdeva MM, Claiborn KC, Khoo C et al (2009) Pdx1 (MODY4) regulates pancreatic beta cell susceptibility to ER stress. Proc Natl Acad Sci U S A 106:19090–19095CrossRefPubMed
Metadata
Title
Glucolipotoxicity age-dependently impairs beta cell function in rats despite a marked increase in beta cell mass
Authors
G. Fontés
B. Zarrouki
D. K. Hagman
M. G. Latour
M. Semache
V. Roskens
P. C. Moore
M. Prentki
C. J. Rhodes
T. L. Jetton
V. Poitout
Publication date
01-11-2010
Publisher
Springer-Verlag
Published in
Diabetologia / Issue 11/2010
Print ISSN: 0012-186X
Electronic ISSN: 1432-0428
DOI
https://doi.org/10.1007/s00125-010-1850-5

Other articles of this Issue 11/2010

Diabetologia 11/2010 Go to the issue
Live Webinar | 27-06-2024 | 18:00 (CEST)

Keynote webinar | Spotlight on medication adherence

Live: Thursday 27th June 2024, 18:00-19:30 (CEST)

WHO estimates that half of all patients worldwide are non-adherent to their prescribed medication. The consequences of poor adherence can be catastrophic, on both the individual and population level.

Join our expert panel to discover why you need to understand the drivers of non-adherence in your patients, and how you can optimize medication adherence in your clinics to drastically improve patient outcomes.

Prof. Kevin Dolgin
Prof. Florian Limbourg
Prof. Anoop Chauhan
Developed by: Springer Medicine
Obesity Clinical Trial Summary

At a glance: The STEP trials

A round-up of the STEP phase 3 clinical trials evaluating semaglutide for weight loss in people with overweight or obesity.

Developed by: Springer Medicine

Highlights from the ACC 2024 Congress

Year in Review: Pediatric cardiology

Watch Dr. Anne Marie Valente present the last year's highlights in pediatric and congenital heart disease in the official ACC.24 Year in Review session.

Year in Review: Pulmonary vascular disease

The last year's highlights in pulmonary vascular disease are presented by Dr. Jane Leopold in this official video from ACC.24.

Year in Review: Valvular heart disease

Watch Prof. William Zoghbi present the last year's highlights in valvular heart disease from the official ACC.24 Year in Review session.

Year in Review: Heart failure and cardiomyopathies

Watch this official video from ACC.24. Dr. Biykem Bozkurt discusses last year's major advances in heart failure and cardiomyopathies.