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1.
bioRxiv ; 2023 Jun 26.
Article in English | MEDLINE | ID: mdl-37398356

ABSTRACT

Reduced glutathione (GSH) is an abundant antioxidant that regulates intracellular redox homeostasis by scavenging reactive oxygen species (ROS). Glutamate-cysteine ligase catalytic (GCLC) subunit is the rate-limiting step in GSH biosynthesis. Using the Pax6-Cre driver mouse line, we deleted expression of the Gclc gene in all pancreatic endocrine progenitor cells. Intriguingly, Gclc knockout (KO) mice, following weaning, exhibited an age-related, progressive diabetes phenotype, manifested as strikingly increased blood glucose and decreased plasma insulin levels. This severe diabetes trait is preceded by pathologic changes in islet of weanling mice. Gclc KO weanlings showed progressive abnormalities in pancreatic morphology including: islet-specific cellular vacuolization, decreased islet-cell mass, and alterations in islet hormone expression. Islets from newly-weaned mice displayed impaired glucose-stimulated insulin secretion, decreased insulin hormone gene expression, oxidative stress, and increased markers of cellular senescence. Our results suggest that GSH biosynthesis is essential for normal development of the mouse pancreatic islet, and that protection from oxidative stress-induced cellular senescence might prevent abnormal islet-cell damage during embryogenesis.

2.
JCI Insight ; 8(11)2023 06 08.
Article in English | MEDLINE | ID: mdl-37288664

ABSTRACT

Insulin secretion from pancreatic ß cells is essential to the maintenance of glucose homeostasis. Defects in this process result in diabetes. Identifying genetic regulators that impair insulin secretion is crucial for the identification of novel therapeutic targets. Here, we show that reduction of ZNF148 in human islets, and its deletion in stem cell-derived ß cells (SC-ß cells), enhances insulin secretion. Transcriptomics of ZNF148-deficient SC-ß cells identifies increased expression of annexin and S100 genes whose proteins form tetrameric complexes involved in regulation of insulin vesicle trafficking and exocytosis. ZNF148 in SC-ß cells prevents translocation of annexin A2 from the nucleus to its functional place at the cell membrane via direct repression of S100A16 expression. These findings point to ZNF148 as a regulator of annexin-S100 complexes in human ß cells and suggest that suppression of ZNF148 may provide a novel therapeutic strategy to enhance insulin secretion.


Subject(s)
Insulin-Secreting Cells , Humans , Insulin-Secreting Cells/metabolism , Insulin Secretion , Glucose/metabolism , Insulin/metabolism , Exocytosis , DNA-Binding Proteins/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism
3.
Elife ; 112022 08 23.
Article in English | MEDLINE | ID: mdl-35997256

ABSTRACT

Pyruvate kinase (PK) and the phosphoenolpyruvate (PEP) cycle play key roles in nutrient-stimulated KATP channel closure and insulin secretion. To identify the PK isoforms involved, we generated mice lacking ß-cell PKm1, PKm2, and mitochondrial PEP carboxykinase (PCK2) that generates mitochondrial PEP. Glucose metabolism was found to generate both glycolytic and mitochondrially derived PEP, which triggers KATP closure through local PKm1 and PKm2 signaling at the plasma membrane. Amino acids, which generate mitochondrial PEP without producing glycolytic fructose 1,6-bisphosphate to allosterically activate PKm2, signal through PKm1 to raise ATP/ADP, close KATP channels, and stimulate insulin secretion. Raising cytosolic ATP/ADP with amino acids is insufficient to close KATP channels in the absence of PK activity or PCK2, indicating that KATP channels are primarily regulated by PEP that provides ATP via plasma membrane-associated PK, rather than mitochondrially derived ATP. Following membrane depolarization, the PEP cycle is involved in an 'off-switch' that facilitates KATP channel reopening and Ca2+ extrusion, as shown by PK activation experiments and ß-cell PCK2 deletion, which prolongs Ca2+ oscillations and increases insulin secretion. In conclusion, the differential response of PKm1 and PKm2 to the glycolytic and mitochondrial sources of PEP influences the ß-cell nutrient response, and controls the oscillatory cycle regulating insulin secretion.


Subject(s)
Adenosine Triphosphate , Pyruvate Kinase , Adenosine Diphosphate , Adenosine Triphosphate/metabolism , Amino Acids , Animals , Mice , Nutrients , Protein Isoforms , Pyruvate Kinase/genetics , Pyruvate Kinase/metabolism
4.
JCI Insight ; 7(10)2022 05 23.
Article in English | MEDLINE | ID: mdl-35603790

ABSTRACT

Insulin secretion from pancreatic ß cells is essential for glucose homeostasis. An insufficient response to the demand for insulin results in diabetes. We previously showed that ß cell-specific deletion of Zfp148 (ß-Zfp148KO) improves glucose tolerance and insulin secretion in mice. Here, we performed Ca2+ imaging of islets from ß­Zfp148KO and control mice fed both a chow and a Western-style diet. ß-Zfp148KO islets demonstrated improved sensitivity and sustained Ca2+ oscillations in response to elevated glucose levels. ß-Zfp148KO islets also exhibited elevated sensitivity to amino acid-induced Ca2+ influx under low glucose conditions, suggesting enhanced mitochondrial phosphoenolpyruvate-dependent (PEP-dependent), ATP-sensitive K+ channel closure, independent of glycolysis. RNA-Seq and proteomics of ß-Zfp148KO islets revealed altered levels of enzymes involved in amino acid metabolism (specifically, SLC3A2, SLC7A8, GLS, GLS2, PSPH, PHGDH, and PSAT1) and intermediary metabolism (namely, GOT1 and PCK2), consistent with altered PEP cycling. In agreement with this, ß-Zfp148KO islets displayed enhanced insulin secretion in response to l-glutamine and activation of glutamate dehydrogenase. Understanding pathways controlled by ZFP148 may provide promising strategies for improving ß cell function that are robust to the metabolic challenge imposed by a Western diet.


Subject(s)
Insulin-Secreting Cells , Islets of Langerhans , Animals , Calcium/metabolism , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Glucose/metabolism , Glutamine/metabolism , Insulin-Secreting Cells/metabolism , Islets of Langerhans/metabolism , Mice , Nutrients , Transcription Factors/metabolism
5.
J Clin Invest ; 132(3)2022 02 01.
Article in English | MEDLINE | ID: mdl-34855620

ABSTRACT

Mutations in Dyrk1b are associated with metabolic syndrome and nonalcoholic fatty liver disease in humans. Our investigations showed that DYRK1B levels are increased in the liver of patients with nonalcoholic steatohepatitis (NASH) and in mice fed with a high-fat, high-sucrose diet. Increasing Dyrk1b levels in the mouse liver enhanced de novo lipogenesis (DNL), fatty acid uptake, and triacylglycerol secretion and caused NASH and hyperlipidemia. Conversely, knockdown of Dyrk1b was protective against high-calorie-induced hepatic steatosis and fibrosis and hyperlipidemia. Mechanistically, Dyrk1b increased DNL by activating mTORC2 in a kinase-independent fashion. Accordingly, the Dyrk1b-induced NASH was fully rescued when mTORC2 was genetically disrupted. The elevated DNL was associated with increased plasma membrane sn-1,2-diacylglyerol levels and increased PKCε-mediated IRKT1150 phosphorylation, which resulted in impaired activation of hepatic insulin signaling and reduced hepatic glycogen storage. These findings provide insights into the mechanisms that underlie Dyrk1b-induced hepatic lipogenesis and hepatic insulin resistance and identify Dyrk1b as a therapeutic target for NASH and insulin resistance in the liver.


Subject(s)
Insulin/metabolism , Lipogenesis , Liver/metabolism , Mechanistic Target of Rapamycin Complex 2/metabolism , Protein Serine-Threonine Kinases/metabolism , Protein-Tyrosine Kinases/metabolism , Signal Transduction , Animals , Humans , Mechanistic Target of Rapamycin Complex 2/genetics , Mice , Protein Serine-Threonine Kinases/genetics , Protein-Tyrosine Kinases/genetics , Dyrk Kinases
6.
Cell Metab ; 32(5): 736-750.e5, 2020 11 03.
Article in English | MEDLINE | ID: mdl-33147484

ABSTRACT

Pancreatic ß cells couple nutrient metabolism with appropriate insulin secretion. Here, we show that pyruvate kinase (PK), which converts ADP and phosphoenolpyruvate (PEP) into ATP and pyruvate, underlies ß cell sensing of both glycolytic and mitochondrial fuels. Plasma membrane-localized PK is sufficient to close KATP channels and initiate calcium influx. Small-molecule PK activators increase the frequency of ATP/ADP and calcium oscillations and potently amplify insulin secretion. PK restricts respiration by cyclically depriving mitochondria of ADP, which accelerates PEP cycling until membrane depolarization restores ADP and oxidative phosphorylation. Our findings support a compartmentalized model of ß cell metabolism in which PK locally generates the ATP/ADP required for insulin secretion. Oscillatory PK activity allows mitochondria to perform synthetic and oxidative functions without any net impact on glucose oxidation. These findings suggest a potential therapeutic route for diabetes based on PK activation that would not be predicted by the current consensus single-state model of ß cell function.


Subject(s)
Insulin/metabolism , Pyruvate Kinase/metabolism , Animals , Cell Line , Humans , Insulin Secretion , Male , Mice , Mice, Inbred C57BL
7.
Cell Metab ; 32(5): 751-766.e11, 2020 11 03.
Article in English | MEDLINE | ID: mdl-33147485

ABSTRACT

The mitochondrial GTP (mtGTP)-dependent phosphoenolpyruvate (PEP) cycle couples mitochondrial PEPCK (PCK2) to pyruvate kinase (PK) in the liver and pancreatic islets to regulate glucose homeostasis. Here, small molecule PK activators accelerated the PEP cycle to improve islet function, as well as metabolic homeostasis, in preclinical rodent models of diabetes. In contrast, treatment with a PK activator did not improve insulin secretion in pck2-/- mice. Unlike other clinical secretagogues, PK activation enhanced insulin secretion but also had higher insulin content and markers of differentiation. In addition to improving insulin secretion, acute PK activation short-circuited gluconeogenesis to reduce endogenous glucose production while accelerating red blood cell glucose turnover. Four-week delivery of a PK activator in vivo remodeled PK phosphorylation, reduced liver fat, and improved hepatic and peripheral insulin sensitivity in HFD-fed rats. These data provide a preclinical rationale for PK activation to accelerate the PEP cycle to improve metabolic homeostasis and insulin sensitivity.


Subject(s)
Mitochondria/metabolism , Phosphoenolpyruvate/metabolism , Animals , Homeostasis , Insulin/metabolism , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Pyruvate Kinase/metabolism , Rats , Rats, Sprague-Dawley
8.
Cell Rep ; 31(6): 107623, 2020 05 12.
Article in English | MEDLINE | ID: mdl-32402282

ABSTRACT

Stem cell-derived ß (SC-ß) cells could provide unlimited human ß cells toward a curative diabetes treatment. Differentiation of SC-ß cells yields transplantable islets that secrete insulin in response to glucose challenges. Following transplantation into mice, SC-ß cell function is comparable to human islets, but the magnitude and consistency of response in vitro are less robust than observed in cadaveric islets. Here, we profile metabolism of SC-ß cells and islets to quantify their capacity to sense glucose and identify reduced anaplerotic cycling in the mitochondria as the cause of reduced glucose-stimulated insulin secretion in SC-ß cells. This activity can be rescued by challenging SC-ß cells with intermediate metabolites from the TCA cycle and late but not early glycolysis, downstream of the enzymes glyceraldehyde 3-phosphate dehydrogenase and phosphoglycerate kinase. Bypassing this metabolic bottleneck results in a robust, bi-phasic insulin release in vitro that is identical in magnitude to functionally mature human islets.


Subject(s)
B-Lymphocytes/metabolism , Glucose/metabolism , Glycolysis/genetics , Stem Cells/metabolism , Animals , Cell Differentiation , Humans , Mice
9.
Cell Rep ; 29(11): 3394-3404.e9, 2019 12 10.
Article in English | MEDLINE | ID: mdl-31825824

ABSTRACT

Pyruvate kinase is an important enzyme in glycolysis and a key metabolic control point. We recently observed a pyruvate kinase liver isoform (PKL) phosphorylation site at S113 that correlates with insulin resistance in rats on a 3 day high-fat diet (HFD) and suggests additional control points for PKL activity. However, in contrast to the classical model of PKL regulation, neither authentically phosphorylated PKL at S12 nor S113 alone is sufficient to alter enzyme kinetics or structure. Instead, we show that cyclin-dependent kinases (CDKs) are activated by the HFD and responsible for PKL phosphorylation at position S113 in addition to other targets. These CDKs control PKL nuclear retention, alter cytosolic PKL activity, and ultimately influence glucose production. These results change our view of PKL regulation and highlight a previously unrecognized pathway of hepatic CDK activity and metabolic control points that may be important in insulin resistance and type 2 diabetes.


Subject(s)
Cyclic AMP-Dependent Protein Kinases/metabolism , Cyclin-Dependent Kinases/metabolism , Gluconeogenesis , Hepatocytes/metabolism , Pyruvate Kinase/metabolism , Signal Transduction , Animals , Cell Line, Tumor , Cells, Cultured , Diet, High-Fat , Glucose/metabolism , Insulin Resistance , Male , Phosphorylation , Pyruvate Kinase/chemistry , Rats , Rats, Sprague-Dawley
10.
Proc Natl Acad Sci U S A ; 116(49): 24770-24778, 2019 12 03.
Article in English | MEDLINE | ID: mdl-31740614

ABSTRACT

Fatty acid amide hydrolase (FAAH) degrades 2 major classes of bioactive fatty acid amides, the N-acylethanolamines (NAEs) and N-acyl taurines (NATs), in central and peripheral tissues. A functional polymorphism in the human FAAH gene is linked to obesity and mice lacking FAAH show altered metabolic states, but whether these phenotypes are caused by elevations in NAEs or NATs is unknown. To overcome the problem of concurrent elevation of NAEs and NATs caused by genetic or pharmacological disruption of FAAH in vivo, we developed an engineered mouse model harboring a single-amino acid substitution in FAAH (S268D) that selectively disrupts NAT, but not NAE, hydrolytic activity. The FAAH-S268D mice accordingly show substantial elevations in NATs without alterations in NAE content, a unique metabolic profile that correlates with heightened insulin sensitivity and GLP-1 secretion. We also show that N-oleoyl taurine (C18:1 NAT), the most abundant NAT in human plasma, decreases food intake, improves glucose tolerance, and stimulates GPR119-dependent GLP-1 and glucagon secretion in mice. Together, these data suggest that NATs act as a class of lipid messengers that improve postprandial glucose regulation and may have potential as investigational metabolites to modify metabolic disease.


Subject(s)
Amidohydrolases/genetics , Blood Glucose/metabolism , Metabolic Syndrome/metabolism , Oleic Acids/metabolism , Taurine/analogs & derivatives , Amidohydrolases/metabolism , Amino Acid Substitution , Animals , Blood Glucose/analysis , Disease Models, Animal , Eating/drug effects , Eating/physiology , Ethanolamines/blood , Ethanolamines/metabolism , Female , Glucagon/metabolism , Glucagon-Like Peptide 1/metabolism , Glucose Tolerance Test , Humans , Injections, Intravenous , Insulin/metabolism , Islets of Langerhans/drug effects , Islets of Langerhans/metabolism , Male , Metabolic Syndrome/blood , Metabolic Syndrome/drug therapy , Metabolic Syndrome/genetics , Mice , Mice, Transgenic , Middle Aged , Oleic Acids/administration & dosage , Oleic Acids/blood , Postprandial Period/drug effects , Postprandial Period/physiology , Receptors, G-Protein-Coupled/metabolism , Taurine/administration & dosage , Taurine/blood , Taurine/metabolism
11.
Cell Rep ; 28(3): 759-772.e10, 2019 07 16.
Article in English | MEDLINE | ID: mdl-31315053

ABSTRACT

Mechanisms coordinating pancreatic ß cell metabolism with insulin secretion are essential for glucose homeostasis. One key mechanism of ß cell nutrient sensing uses the mitochondrial GTP (mtGTP) cycle. In this cycle, mtGTP synthesized by succinyl-CoA synthetase (SCS) is hydrolyzed via mitochondrial PEPCK (PEPCK-M) to make phosphoenolpyruvate, a high-energy metabolite that integrates TCA cycling and anaplerosis with glucose-stimulated insulin secretion (GSIS). Several strategies, including xenotopic overexpression of yeast mitochondrial GTP/GDP exchanger (GGC1) and human ATP and GTP-specific SCS isoforms, demonstrated the importance of the mtGTP cycle. These studies confirmed that mtGTP triggers and amplifies normal GSIS and rescues defects in GSIS both in vitro and in vivo. Increased mtGTP synthesis enhanced calcium oscillations during GSIS. mtGTP also augmented mitochondrial mass, increased insulin granule number, and membrane proximity without triggering de-differentiation or metabolic fragility. These data highlight the importance of the mtGTP signal in nutrient sensing, insulin secretion, mitochondrial maintenance, and ß cell health.


Subject(s)
Adenosine Triphosphate/metabolism , Glucose/metabolism , Guanosine Triphosphate/metabolism , Insulin-Secreting Cells/metabolism , Insulin/metabolism , Mitochondria/metabolism , Succinate-CoA Ligases/metabolism , Animals , Cell Differentiation/genetics , Cell Line , Cell Proliferation/genetics , Citric Acid Cycle/genetics , Homeostasis , Humans , Insulin Secretion/genetics , Insulin Secretion/physiology , Insulin-Secreting Cells/enzymology , Insulin-Secreting Cells/ultrastructure , Mice , Mice, Inbred C57BL , Mice, Transgenic , Microscopy, Electron, Transmission , Mitochondria/enzymology , Mitochondria/ultrastructure , Mitochondrial Membranes/metabolism , Oxidative Phosphorylation , Phosphoenolpyruvate Carboxykinase (ATP)/metabolism , Up-Regulation
12.
Nat Commun ; 10(1): 548, 2019 02 01.
Article in English | MEDLINE | ID: mdl-30710078

ABSTRACT

Sodium-glucose transport protein 2 (SGLT2) inhibitors are a class of anti-diabetic agents; however, concerns have been raised about their potential to induce euglycemic ketoacidosis and to increase both glucose production and glucagon secretion. The mechanisms behind these alterations are unknown. Here we show that the SGLT2 inhibitor (SGLT2i) dapagliflozin promotes ketoacidosis in both healthy and type 2 diabetic rats in the setting of insulinopenia through increased plasma catecholamine and corticosterone concentrations secondary to volume depletion. These derangements increase white adipose tissue (WAT) lipolysis and hepatic acetyl-CoA content, rates of hepatic glucose production, and hepatic ketogenesis. Treatment with a loop diuretic, furosemide, under insulinopenic conditions replicates the effect of dapagliflozin and causes ketoacidosis. Furthermore, the effects of SGLT2 inhibition to promote ketoacidosis are independent from hyperglucagonemia. Taken together these data in rats identify the combination of insulinopenia and dehydration as a potential target to prevent euglycemic ketoacidosis associated with SGLT2i.


Subject(s)
Dehydration/complications , Insulin/metabolism , Ketosis/chemically induced , Ketosis/etiology , Sodium-Glucose Transporter 2 Inhibitors/adverse effects , Animals , Benzhydryl Compounds/adverse effects , Dehydration/pathology , Diabetes Mellitus, Type 2/complications , Diabetes Mellitus, Type 2/pathology , Disease Models, Animal , Glucocorticoids/metabolism , Glucose/metabolism , Glucosides/adverse effects , Humans , Ketosis/pathology , Lipolysis/drug effects , Liver/drug effects , Liver/metabolism , Male , Rats, Sprague-Dawley , Receptors, Adrenergic, beta-1/metabolism
13.
Am J Physiol Endocrinol Metab ; 311(2): E461-70, 2016 08 01.
Article in English | MEDLINE | ID: mdl-27406738

ABSTRACT

Imeglimin is a promising new oral antihyperglycemic agent that has been studied in clinical trials as a possible monotherapy or add-on therapy to lower fasting plasma glucose and improve hemoglobin A1c (1-3, 9). Imeglimin was shown to improve both fasting and postprandial glycemia and to increase insulin secretion in response to glucose during a hyperglycemic clamp after 1-wk of treatment in type 2 diabetic patients. However, whether the ß-cell stimulatory effect of imeglimin is solely or partially responsible for its effects on glycemia remains to be fully confirmed. Here, we show that imeglimin directly activates ß-cell insulin secretion in awake rodents without affecting hepatic insulin sensitivity, body composition, or energy expenditure. These data identify a primary amplification rather than trigger the ß-cell mechanism that explains the acute, antidiabetic activity of imeglimin.


Subject(s)
Blood Glucose/drug effects , Hypoglycemic Agents/pharmacology , Insulin-Secreting Cells/drug effects , Insulin/metabolism , Triazines/pharmacology , Animals , Blood Glucose/metabolism , Diet, High-Fat , Fasting , Glucose/metabolism , Glucose Clamp Technique , Insulin Resistance , Insulin Secretion , Insulin-Secreting Cells/metabolism , Liver/drug effects , Liver/metabolism , Male , Mice , Mice, Inbred C57BL , Postprandial Period , Rats , Rats, Sprague-Dawley
14.
Nature ; 534(7606): 213-7, 2016 06 09.
Article in English | MEDLINE | ID: mdl-27279214

ABSTRACT

Obesity, insulin resistance and the metabolic syndrome are associated with changes to the gut microbiota; however, the mechanism by which modifications to the gut microbiota might lead to these conditions is unknown. Here we show that increased production of acetate by an altered gut microbiota in rodents leads to activation of the parasympathetic nervous system, which, in turn, promotes increased glucose-stimulated insulin secretion, increased ghrelin secretion, hyperphagia, obesity and related sequelae. Together, these findings identify increased acetate production resulting from a nutrient-gut microbiota interaction and subsequent parasympathetic activation as possible therapeutic targets for obesity.


Subject(s)
Acetates/metabolism , Brain/physiology , Gastrointestinal Microbiome/physiology , Insulin-Secreting Cells/metabolism , Metabolic Syndrome/metabolism , Animals , Diet, High-Fat , Ghrelin/metabolism , Glucose/metabolism , Hyperphagia/metabolism , Insulin/metabolism , Insulin Secretion , Obesity/metabolism , Parasympathetic Nervous System/physiology , Rats
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