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1.
Diabetologia ; 63(7): 1368-1381, 2020 07.
Article in English | MEDLINE | ID: mdl-32350566

ABSTRACT

AIMS/HYPOTHESIS: Mitochondrial oxidative metabolism is central to glucose-stimulated insulin secretion (GSIS). Whether Ca2+ uptake into pancreatic beta cell mitochondria potentiates or antagonises this process is still a matter of debate. Although the mitochondrial Ca2+ importer (MCU) complex is thought to represent the main route for Ca2+ transport across the inner mitochondrial membrane, its role in beta cells has not previously been examined in vivo. METHODS: Here, we inactivated the pore-forming subunit of the MCU, encoded by Mcu, selectively in mouse beta cells using Ins1Cre-mediated recombination. Whole or dissociated pancreatic islets were isolated and used for live beta cell fluorescence imaging of cytosolic or mitochondrial Ca2+ concentration and ATP production in response to increasing glucose concentrations. Electrophysiological recordings were also performed on whole islets. Serum and blood samples were collected to examine oral and i.p. glucose tolerance. RESULTS: Glucose-stimulated mitochondrial Ca2+ accumulation (p< 0.05), ATP production (p< 0.05) and insulin secretion (p< 0.01) were strongly inhibited in beta cell-specific Mcu-null (ßMcu-KO) animals, in vitro, as compared with wild-type (WT) mice. Interestingly, cytosolic Ca2+ concentrations increased (p< 0.001), whereas mitochondrial membrane depolarisation improved in ßMcu-KO animals. ßMcu-KO mice displayed impaired in vivo insulin secretion at 5 min (p< 0.001) but not 15 min post-i.p. injection of glucose, whilst the opposite phenomenon was observed following an oral gavage at 5 min. Unexpectedly, glucose tolerance was improved (p< 0.05) in young ßMcu-KO (<12 weeks), but not in older animals vs WT mice. CONCLUSIONS/INTERPRETATION: MCU is crucial for mitochondrial Ca2+ uptake in pancreatic beta cells and is required for normal GSIS. The apparent compensatory mechanisms that maintain glucose tolerance in ßMcu-KO mice remain to be established.


Subject(s)
Calcium/metabolism , Mitochondria/metabolism , Animals , Blotting, Western , Electrophoresis, Polyacrylamide Gel , Glucose/metabolism , Insulin Secretion/physiology , Male , Mice , Mice, Inbred C57BL , Mice, Knockout
2.
Dig Dis Sci ; 63(11): 3049-3057, 2018 11.
Article in English | MEDLINE | ID: mdl-30178286

ABSTRACT

BACKGROUND AND AIMS: The inflammatory bowel diseases (IBD) are particularly common among the Ashkenazi Jewish (AJ) population. Population-specific estimates of familial risk are important for counseling; however, relatively small cohorts of AJ IBD patients have been analyzed for familial risk to date. This study aimed to recruit a new cohort of AJ IBD patients, mainly from the UK, to determine the familial occurrence of disease. METHODS: A total of 864 AJ IBD patients were recruited through advertisements, hospital clinics, and primary care. Participants were interviewed about their Jewish ancestry, disease phenotype, age of diagnosis, and family history of disease. Case notes were reviewed. RESULTS: The 864 probands comprised 506 sporadic and 358 familial cases, the latter with a total of 625 affected relatives. Of the UK cases, 40% had a positive family history with 25% having at least one affected first-degree relative. These percentages were lower among those recruited through hospital clinics and primary care (33% for all relatives and 22% among first-degree relatives). Examining all probands, the relative risk of IBD for offspring, siblings, and parents was 10.5, 7.4, and 4, respectively. Age of diagnosis was significantly lower in familial versus sporadic patients with Crohn's disease. CONCLUSIONS: This study reports familial risk estimates for a significant proportion of the AJ IBD population in the UK. The high rate of a positive family history in this cohort may reflect the greater genetic burden for IBD among AJs. These data are of value in predicting the likelihood of future recurrence of IBD in AJ families.


Subject(s)
Inflammatory Bowel Diseases/genetics , Adult , Age of Onset , Cohort Studies , Humans , Inflammatory Bowel Diseases/ethnology , United Kingdom/epidemiology , Young Adult
3.
Diabetologia ; 59(9): 1938-47, 2016 09.
Article in English | MEDLINE | ID: mdl-27338626

ABSTRACT

AIMS/HYPOTHESIS: Per-Arnt-Sim kinase (PASK) is a nutrient-regulated domain-containing protein kinase previously implicated in the control of insulin gene expression and glucagon secretion. Here, we explore the roles of PASK in the control of islet hormone release, by generating mice with selective deletion of the Pask gene in pancreatic beta or alpha cells. METHODS: Floxed alleles of Pask were produced by homologous recombination and animals bred with mice bearing beta (Ins1 (Cre); PaskBKO) or alpha (Ppg (Cre) [also known as Gcg]; PaskAKO) cell-selective Cre recombinase alleles. Glucose homeostasis and hormone secretion in vivo and in vitro, gene expression and islet cell mass were measured using standard techniques. RESULTS: Ins1 (Cre)-based recombination led to efficient beta cell-targeted deletion of Pask. Beta cell mass was reduced by 36.5% (p < 0.05) compared with controls in PaskBKO mice, as well as in global Pask-null mice (38%, p < 0.05). PaskBKO mice displayed normal body weight and fasting glycaemia, but slightly impaired glucose tolerance, and beta cell proliferation, after maintenance on a high-fat diet. Whilst glucose tolerance was unaffected in PaskAKO mice, glucose infusion rates were increased, and glucagon secretion tended to be lower, during hypoglycaemic clamps. Although alpha cell mass was increased (21.9%, p < 0.05), glucagon release at low glucose was impaired (p < 0.05) in PaskAKO islets. CONCLUSIONS/INTERPRETATION: The findings demonstrate cell-autonomous roles for PASK in the control of pancreatic endocrine hormone secretion. Differences between the glycaemic phenotype of global vs cell type-specific null mice suggest important roles for tissue interactions in the control of glycaemia by PASK.


Subject(s)
Glucagon-Secreting Cells/metabolism , Insulin-Secreting Cells/metabolism , Protein Serine-Threonine Kinases/deficiency , Protein Serine-Threonine Kinases/metabolism , Alleles , Animals , Diet, High-Fat/adverse effects , Glucose/metabolism , Homeostasis/genetics , Male , Mice , Mice, Knockout , Protein Serine-Threonine Kinases/genetics
4.
Pflugers Arch ; 465(4): 543-54, 2013 Apr.
Article in English | MEDLINE | ID: mdl-23149488

ABSTRACT

Pancreatic ß cells respond to increases in glucose concentration with enhanced metabolism, the closure of ATP-sensitive K(+) channels and electrical spiking. The latter results in oscillatory Ca(2+) influx through voltage-gated Ca(2+) channels and the activation of insulin release. The relationship between changes in cytosolic and mitochondrial free calcium concentration ([Ca(2+)]cyt and [Ca(2+)]mit, respectively) during these cycles is poorly understood. Importantly, the activation of Ca(2+)-sensitive intramitochondrial dehydrogenases, occurring alongside the stimulation of ATP consumption required for Ca(2+) pumping and other processes, may exert complex effects on cytosolic ATP/ADP ratios and hence insulin secretion. To explore the relationship between these parameters in single primary ß cells, we have deployed cytosolic (Fura red, Indo1) or green fluorescent protein-based recombinant-targeted (Pericam, 2mt8RP for mitochondria; D4ER for the ER) probes for Ca(2+) and cytosolic ATP/ADP (Perceval) alongside patch-clamp electrophysiology. We demonstrate that: (1) blockade of mitochondrial Ca(2+) uptake by shRNA-mediated silencing of the uniporter MCU attenuates glucose- and essentially blocks tolbutamide-stimulated, insulin secretion; (2) during electrical stimulation, mitochondria decode cytosolic Ca(2+) oscillation frequency as stable increases in [Ca(2+)]mit and cytosolic ATP/ADP; (3) mitochondrial Ca(2+) uptake rates remained constant between individual spikes, arguing against activity-dependent regulation ("plasticity") and (4) the relationship between [Ca(2+)]cyt and [Ca(2+)]mit is essentially unaffected by changes in endoplasmic reticulum Ca(2+) ([Ca(2+)]ER). Our findings thus highlight new aspects of Ca(2+) signalling in ß cells of relevance to the actions of both glucose and sulphonylureas.


Subject(s)
Adenosine Triphosphate/biosynthesis , Calcium Signaling , Calcium/metabolism , Insulin-Secreting Cells/metabolism , Mitochondria/metabolism , Action Potentials , Adenosine Diphosphate/metabolism , Animals , Calcium Channels/metabolism , Cells, Cultured , Cytosol/metabolism , Endoplasmic Reticulum/metabolism , Female , Glucose/metabolism , Insulin/metabolism , Insulin-Secreting Cells/physiology , Mice
5.
J Biol Chem ; 286(51): 44005-44014, 2011 Dec 23.
Article in English | MEDLINE | ID: mdl-22065581

ABSTRACT

PAS kinase (PASK) is a glucose-regulated protein kinase involved in the control of pancreatic islet hormone release and insulin sensitivity. We aimed here to identify mutations in the PASK gene that may be associated with young-onset diabetes in humans. We screened 18 diabetic probands with unelucidated maturity-onset diabetes of the young (MODY). We identified two rare nonsynonymous mutations in the PASK gene (p.L1051V and p.G1117E), each of which was found in a single MODY family. Wild type or mutant PASKs were expressed in HEK 293 cells. Kinase activity of the affinity-purified proteins was assayed as autophosphorylation at amino acid Thr307 or against an Ugp1p-derived peptide. Whereas the PASK p.G1117E mutant displayed a ∼25% increase with respect to wild type PASK in the extent of autophosphorylation, and a ∼2-fold increase in kinase activity toward exogenous substrates, the activity of the p.L1051V mutant was unchanged. Amino acid Gly1117 is located in an α helical region opposing the active site of PASK and may elicit either: (a) a conformational change that increases catalytic efficiency or (b) a diminished inhibitory interaction with the PAS domain. Mouse islets were therefore infected with adenoviruses expressing wild type or mutant PASK and the regulation of insulin secretion was examined. PASK p.G1117E-infected islets displayed a 4-fold decrease in glucose-stimulated (16.7 versus 3 mM) insulin secretion, chiefly reflecting a 4.5-fold increase in insulin release at low glucose. In summary, we have characterized a rare mutation (p.G1117E) in the PASK gene from a young-onset diabetes family, which modulates glucose-stimulated insulin secretion.


Subject(s)
Glucose/metabolism , Insulin/metabolism , Islets of Langerhans/cytology , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Adult , Animals , Cell Line , Diabetes Mellitus/metabolism , Genomics , Glucagon/metabolism , HEK293 Cells , HSP70 Heat-Shock Proteins/metabolism , Humans , Insulin Secretion , Male , Membrane Proteins/metabolism , Models, Genetic , Mutagenesis , Phosphorylation , Rats , Rats, Wistar , Recombinant Proteins/metabolism
6.
Biochem Biophys Res Commun ; 399(2): 155-61, 2010 Aug 20.
Article in English | MEDLINE | ID: mdl-20637728

ABSTRACT

Pancreatic and duodenal homeobox 1 (PDX1) regulates pancreatic development and mature beta-cell function. We demonstrate by mass spectrometry that serine residue at position 269 in the C-terminal domain of PDX1 is phosphorylated in beta-cells. Besides we show that the degree of phosphorylation, assessed with a phospho-Ser-269-specific antibody, is decreased by elevated glucose concentrations in both MIN6 beta-cells and primary mouse pancreatic islets. Homeodomain interacting protein kinase 2 (HIPK2) phosphorylates PDX1 in vitro; phosphate incorporation substantially decreases in PDX1 S269A mutant. Silencing of HIPK2 led to a 51+/-0.2% decrease in Ser-269 phosphorylation in MIN6 beta-cells. Mutation of Ser-269 to phosphomimetic residue glutamic acid (S269E) or de-phosphomimetic residue alanine (S269A) exerted no effect on PDX1 half-life. Instead, PDX1 S269E mutant displayed abnormal changes in subnuclear localization in response to high glucose. Our results suggest that HIPK2-mediated phosphorylation of PDX1 at Ser-269 might be a regulatory mechanism connecting signals generated by changes in extracellular glucose concentration to downstream effectors via changes in subnuclear localization of PDX1, thereby influencing islet cell differentiation and function.


Subject(s)
Carrier Proteins/metabolism , Cell Nucleus/metabolism , Homeodomain Proteins/metabolism , Insulin-Secreting Cells/metabolism , Protein Serine-Threonine Kinases/metabolism , Serine/metabolism , Trans-Activators/metabolism , Animals , Cell Differentiation , Cell Line , Glucose/metabolism , Homeodomain Proteins/genetics , Humans , Insulin-Secreting Cells/cytology , Mice , Phosphorylation , Protein Stability , Serine/genetics , Trans-Activators/genetics
7.
Cell Metab ; 24(3): 389-401, 2016 09 13.
Article in English | MEDLINE | ID: mdl-27452146

ABSTRACT

The arrangement of ß cells within islets of Langerhans is critical for insulin release through the generation of rhythmic activity. A privileged role for individual ß cells in orchestrating these responses has long been suspected, but not directly demonstrated. We show here that the ß cell population in situ is operationally heterogeneous. Mapping of islet functional architecture revealed the presence of hub cells with pacemaker properties, which remain stable over recording periods of 2 to 3 hr. Using a dual optogenetic/photopharmacological strategy, silencing of hubs abolished coordinated islet responses to glucose, whereas specific stimulation restored communication patterns. Hubs were metabolically adapted and targeted by both pro-inflammatory and glucolipotoxic insults to induce widespread ß cell dysfunction. Thus, the islet is wired by hubs, whose failure may contribute to type 2 diabetes mellitus.


Subject(s)
Glucose/pharmacology , Insulin-Secreting Cells/drug effects , Insulin-Secreting Cells/metabolism , Animals , Calcium Signaling/drug effects , Calcium Signaling/radiation effects , Cell Differentiation/drug effects , Computer Systems , Diabetes Mellitus/pathology , Homeostasis/drug effects , Homeostasis/radiation effects , Humans , Insulin/metabolism , Insulin Secretion , Light , Lipids/toxicity , Metabolome/drug effects , Metabolomics , Mice , Optical Phenomena , Phenotype , Species Specificity
8.
Oncogene ; 21(25): 3978-87, 2002 Jun 06.
Article in English | MEDLINE | ID: mdl-12037680

ABSTRACT

Protein kinase CK2 is a ubiquitous and pleiotropic Ser/Thr protein kinase involved in cell growth and transformation. Here we report the identification by yeast interaction trap of a CK2 interacting protein, UBC3B, which is highly homologous to the E2 ubiquitin conjugating enzyme UBC3/CDC34. UBC3B complements the yeast cdc34-2 cell cycle arrest mutant in S. cerevisiae and transfers ubiquitin to a target substrate in vitro. UBC3B is specifically phosphorylated by CK2 in vitro and in vivo. We mapped by deletions and site directed mutagenesis the phosphorylation site to a serine residue within the C-terminal domain in position 233 of UBC3B and in the corresponding serine residue of UBC3. Following CK2-dependent phosphorylation both UBC3B and UBC3 bind to the F-box protein beta-TrCP, the substrate recognition subunit of an SCF (Skp1, Cul1, F-box) ubiquitin ligase. Furthermore, we observed that co-transfection of CK2alpha' together with UBC3B, but not with UBC3DeltaC, enhances the degradation of beta-catenin. Taken together these data suggest that CK2-dependent phosphorylation of UBC3 and UBC3B functions by regulating beta-TrCP substrate recognition.


Subject(s)
Cytoskeletal Proteins/metabolism , GTP-Binding Proteins/metabolism , Ligases/metabolism , Protein Serine-Threonine Kinases/metabolism , Trans-Activators , Ubiquitin-Protein Ligase Complexes , Amino Acid Sequence , Anaphase-Promoting Complex-Cyclosome , Animals , Casein Kinase II , Cells, Cultured , Chloramphenicol O-Acetyltransferase/metabolism , Cloning, Molecular , DNA Primers/chemistry , Gene Library , Genetic Complementation Test , Glutathione Transferase/metabolism , Humans , Ligases/genetics , Mice , Molecular Sequence Data , Phosphorylation , Plasmids , Polymerase Chain Reaction , Precipitin Tests , Promoter Regions, Genetic , Saccharomyces cerevisiae , Saccharomyces cerevisiae Proteins , Sequence Homology, Amino Acid , Ubiquitin/metabolism , Ubiquitin-Conjugating Enzymes , beta Catenin , beta-Transducin Repeat-Containing Proteins
9.
Diabetes ; 63(9): 3009-21, 2014 Sep.
Article in English | MEDLINE | ID: mdl-24740569

ABSTRACT

Single nucleotide polymorphisms (SNPs) within the ADCY5 gene, encoding adenylate cyclase 5, are associated with elevated fasting glucose and increased type 2 diabetes (T2D) risk. Despite this, the mechanisms underlying the effects of these polymorphic variants at the level of pancreatic ß-cells remain unclear. Here, we show firstly that ADCY5 mRNA expression in islets is lowered by the possession of risk alleles at rs11708067. Next, we demonstrate that ADCY5 is indispensable for coupling glucose, but not GLP-1, to insulin secretion in human islets. Assessed by in situ imaging of recombinant probes, ADCY5 silencing impaired glucose-induced cAMP increases and blocked glucose metabolism toward ATP at concentrations of the sugar >8 mmol/L. However, calcium transient generation and functional connectivity between individual human ß-cells were sharply inhibited at all glucose concentrations tested, implying additional, metabolism-independent roles for ADCY5. In contrast, calcium rises were unaffected in ADCY5-depleted islets exposed to GLP-1. Alterations in ß-cell ADCY5 expression and impaired glucose signaling thus provide a likely route through which ADCY5 gene polymorphisms influence fasting glucose levels and T2D risk, while exerting more minor effects on incretin action.


Subject(s)
Adenylyl Cyclases/physiology , Glucose/metabolism , Insulin-Secreting Cells/metabolism , Insulin/metabolism , Calcium/metabolism , Diabetes Mellitus, Type 2/genetics , Glucagon-Like Peptide 1/physiology , Glucose/pharmacology , Humans , Insulin Secretion , Polymorphism, Single Nucleotide , RNA, Messenger/metabolism , Risk
10.
PLoS One ; 7(7): e39722, 2012.
Article in English | MEDLINE | ID: mdl-22829870

ABSTRACT

Glucose induces insulin release from pancreatic ß-cells by stimulating ATP synthesis, membrane depolarisation and Ca(2+) influx. As well as activating ATP-consuming processes, cytosolic Ca(2+) increases may also potentiate mitochondrial ATP synthesis. Until recently, the ability to study the role of mitochondrial Ca(2+) transport in glucose-stimulated insulin secretion has been hindered by the absence of suitable approaches either to suppress Ca(2+) uptake into these organelles, or to examine the impact on ß-cell excitability. Here, we have combined patch-clamp electrophysiology with simultaneous real-time imaging of compartmentalised changes in Ca(2+) and ATP/ADP ratio in single primary mouse ß-cells, using recombinant targeted (Pericam or Perceval, respectively) as well as entrapped intracellular (Fura-Red), probes. Through shRNA-mediated silencing we show that the recently-identified mitochondrial Ca(2+) uniporter, MCU, is required for depolarisation-induced mitochondrial Ca(2+) increases, and for a sustained increase in cytosolic ATP/ADP ratio. By contrast, silencing of the mitochondrial Na(+)-Ca(2+) exchanger NCLX affected the kinetics of glucose-induced changes in, but not steady state values of, cytosolic ATP/ADP. Exposure to gluco-lipotoxic conditions delayed both mitochondrial Ca(2+) uptake and cytosolic ATP/ADP ratio increases without affecting the expression of either gene. Mitochondrial Ca(2+) accumulation, mediated by MCU and modulated by NCLX, is thus required for normal glucose sensing by pancreatic ß-cells, and becomes defective in conditions mimicking the diabetic milieu.


Subject(s)
Adenosine Triphosphate/metabolism , Calcium Channels/metabolism , Glucose/pharmacology , Insulin-Secreting Cells/drug effects , Insulin-Secreting Cells/metabolism , Animals , Calcium/metabolism , Calcium Channels/genetics , Cells, Cultured , Female , Gene Silencing , Mice
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