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1.
bioRxiv ; 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-39005465

ABSTRACT

Glucolipotoxicity, caused by combined hyperglycemia and hyperlipidemia, results in ß-cell failure and type 2 diabetes (T2D) via cellular stress-related mechanisms. Activating transcription factor 4 (Atf4) is an essential effector of stress response. We show here that Atf4 expression in ß-cells is dispensable for glucose homeostasis in young mice, but it is required for ß-cell function during aging and under obesity-related metabolic stress. Henceforth, aged Atf4- deficient ß-cells display compromised secretory function under acute hyperglycemia. In contrast, they are resistant to acute free fatty acid-induced loss-of identity and dysfunction. At molecular level, Atf4 -deficient ß-cells down-regulate genes involved in protein translation, reducing ß-cell identity gene products under high glucose. They also upregulate several genes involved in lipid metabolism or signaling, likely contributing to their resistance to free fatty acid-induced dysfunction. These results suggest that Atf4 activation is required for ß-cell identity and function under high glucose, but this paradoxically induces ß-cell failure in the presence of high levels of free fatty acids. Different branches of Atf4 activity could be manipulated for protecting ß-cells from metabolic stress-induced failure. Highlights: Atf4 is dispensable in ß-cells in young miceAtf4 protects ß-cells under high glucoseAtf4 exacerbate fatty acid-induced ß-cell defectsAtf4 activates translation but depresses lipid-metabolism.

2.
Elife ; 122024 May 03.
Article in English | MEDLINE | ID: mdl-38700926

ABSTRACT

The gain-of-function mutation in the TALK-1 K+ channel (p.L114P) is associated with maturity-onset diabetes of the young (MODY). TALK-1 is a key regulator of ß-cell electrical activity and glucose-stimulated insulin secretion. The KCNK16 gene encoding TALK-1 is the most abundant and ß-cell-restricted K+ channel transcript. To investigate the impact of KCNK16 L114P on glucose homeostasis and confirm its association with MODY, a mouse model containing the Kcnk16 L114P mutation was generated. Heterozygous and homozygous Kcnk16 L114P mice exhibit increased neonatal lethality in the C57BL/6J and the CD-1 (ICR) genetic background, respectively. Lethality is likely a result of severe hyperglycemia observed in the homozygous Kcnk16 L114P neonates due to lack of glucose-stimulated insulin secretion and can be reduced with insulin treatment. Kcnk16 L114P increased whole-cell ß-cell K+ currents resulting in blunted glucose-stimulated Ca2+ entry and loss of glucose-induced Ca2+ oscillations. Thus, adult Kcnk16 L114P mice have reduced glucose-stimulated insulin secretion and plasma insulin levels, which significantly impairs glucose homeostasis. Taken together, this study shows that the MODY-associated Kcnk16 L114P mutation disrupts glucose homeostasis in adult mice resembling a MODY phenotype and causes neonatal lethality by inhibiting islet insulin secretion during development. These data suggest that TALK-1 is an islet-restricted target for the treatment for diabetes.


Subject(s)
Diabetes Mellitus, Type 2 , Glucagon , Glucose , Insulin Secretion , Mice, Inbred C57BL , Animals , Male , Mice , Animals, Newborn , Diabetes Mellitus, Type 2/genetics , Diabetes Mellitus, Type 2/metabolism , Disease Models, Animal , Glucagon/metabolism , Glucose/metabolism , Homeostasis , Insulin/metabolism , Insulin Secretion/drug effects , Insulin Secretion/genetics , Islets of Langerhans/metabolism , Mutation , Potassium Channels/metabolism , Potassium Channels/genetics
3.
Res Sq ; 2024 Mar 07.
Article in English | MEDLINE | ID: mdl-38496675

ABSTRACT

Endocrine islet b cells comprise heterogenous cell subsets. Yet when/how these subsets are produced and how stable they are remain unknown. Addressing these questions is important for preventing/curing diabetes, because lower numbers of b cells with better secretory function is a high risk of this disease. Using combinatorial cell lineage tracing, scRNA-seq, and DNA methylation analysis, we show here that embryonic islet progenitors with distinct gene expression and DNA methylation produce b-cell subtypes of different function and viability in adult mice. The subtype with better function is enriched for genes involved in vesicular production/trafficking, stress response, and Ca2+-secretion coupling, which further correspond to differential DNA methylation in putative enhancers of these genes. Maternal overnutrition, a major diabetes risk factor, reduces the proportion of endocrine progenitors of the b-cell subtype with better-function via deregulating DNA methyl transferase 3a. Intriguingly, the gene signature that defines mouse b-cell subtypes can reliably divide human cells into two sub-populations while the proportion of b cells with better-function is reduced in diabetic donors. The implication of these results is that modulating DNA methylation in islet progenitors using maternal food supplements can be explored to improve b-cell function in the prevention and therapy of diabetes.

4.
Cell Rep ; 43(1): 113673, 2024 01 23.
Article in English | MEDLINE | ID: mdl-38206814

ABSTRACT

Mitochondrial Ca2+ ([Ca2+]m) homeostasis is critical for ß-cell function and becomes disrupted during the pathogenesis of diabetes. [Ca2+]m uptake is dependent on elevations in cytoplasmic Ca2+ ([Ca2+]c) and endoplasmic reticulum Ca2+ ([Ca2+]ER) release, both of which are regulated by the two-pore domain K+ channel TALK-1. Here, utilizing a novel ß-cell TALK-1-knockout (ß-TALK-1-KO) mouse model, we found that TALK-1 limited ß-cell [Ca2+]m accumulation and ATP production. However, following exposure to a high-fat diet (HFD), ATP-linked respiration, glucose-stimulated oxygen consumption rate, and glucose-stimulated insulin secretion (GSIS) were increased in control but not TALK1-KO mice. Although ß-TALK-1-KO animals showed similar GSIS before and after HFD treatment, these mice were protected from HFD-induced glucose intolerance. Collectively, these data identify that TALK-1 channel control of ß-cell function reduces [Ca2+]m and suggest that metabolic remodeling in diabetes drives dysglycemia.


Subject(s)
Diabetes Mellitus , Insulin-Secreting Cells , Animals , Mice , Adenosine Triphosphate/metabolism , Calcium/metabolism , Diabetes Mellitus/metabolism , Diet , Endoplasmic Reticulum/metabolism , Glucose/metabolism , Homeostasis , Insulin/metabolism , Insulin Secretion , Insulin-Secreting Cells/metabolism , Mice, Knockout , Mitochondria/metabolism
5.
bioRxiv ; 2024 Feb 27.
Article in English | MEDLINE | ID: mdl-37546831

ABSTRACT

The gain-of-function mutation in the TALK-1 K + channel (p.L114P) is associated with maturity-onset diabetes of the young (MODY). TALK-1 is a key regulator of ß-cell electrical activity and glucose-stimulated insulin secretion (GSIS). The KCNK16 gene encoding TALK-1, is the most abundant and ß-cell-restricted K + channel transcript. To investigate the impact of KCNK16 L114P on glucose homeostasis and confirm its association with MODY, a mouse model containing the Kcnk16 L114P mutation was generated. Heterozygous and homozygous Kcnk16 L114P mice exhibit increased neonatal lethality in the C57BL/6J and the mixed C57BL/6J:CD-1(ICR) genetic background, respectively. Lethality is likely a result of severe hyperglycemia observed in the homozygous Kcnk16 L114P neonates due to lack of glucose-stimulated insulin secretion and can be reduced with insulin treatment. Kcnk16 L114P increased whole-cell ß-cell K + currents resulting in blunted glucose-stimulated Ca 2+ entry and loss of glucose-induced Ca 2+ oscillations. Thus, adult Kcnk16 L114P mice have reduced glucose-stimulated insulin secretion and plasma insulin levels, which significantly impaired glucose homeostasis. Taken together, this study shows that the MODY-associated Kcnk16 L114P mutation disrupts glucose homeostasis in adult mice resembling a MODY phenotype and causes neonatal lethality by inhibiting islet hormone secretion during development. These data strongly suggest that TALK-1 is an islet-restricted target for the treatment of diabetes.

6.
Nat Commun ; 13(1): 6461, 2022 10 29.
Article in English | MEDLINE | ID: mdl-36309517

ABSTRACT

Gi/o-coupled somatostatin or α2-adrenergic receptor activation stimulated ß-cell NKA activity, resulting in islet Ca2+ fluctuations. Furthermore, intra-islet paracrine activation of ß-cell Gi/o-GPCRs and NKAs by δ-cell somatostatin secretion slowed Ca2+ oscillations, which decreased insulin secretion. ß-cell membrane potential hyperpolarization resulting from Gi/o-GPCR activation was dependent on NKA phosphorylation by Src tyrosine kinases. Whereas, ß-cell NKA function was inhibited by cAMP-dependent PKA activity. These data reveal that NKA-mediated ß-cell membrane potential hyperpolarization is the primary and conserved mechanism for Gi/o-GPCR control of electrical excitability, Ca2+ handling, and insulin secretion.


Subject(s)
Insulin-Secreting Cells , Insulin Secretion , Insulin-Secreting Cells/metabolism , Sodium/metabolism , Receptors, G-Protein-Coupled/metabolism , Somatostatin/metabolism , Sodium-Potassium-Exchanging ATPase/metabolism
7.
Diabetes Obes Metab ; 24(9): 1741-1752, 2022 09.
Article in English | MEDLINE | ID: mdl-35546791

ABSTRACT

AIM: To determine whether hyperpolarization-activated cyclic nucleotide-gated (HCN) channels impact glucagon-like peptide-1 (GLP-1) receptor (GLP-1R) modulation of islet Ca2+ handling and insulin secretion. METHODS: The impact of liraglutide (GLP-1 analogue) on islet Ca2+ handling, HCN currents and insulin secretion was monitored with fluorescence microscopy, electrophysiology and enzyme immunoassays, respectively. Furthermore, liraglutide-mediated ß-to-δ-cell cross-communication was assessed following selective ablation of either mouse islet δ or ß cells. RESULTS: Liraglutide increased ß-cell Ca2+ oscillation frequency in mouse and human islets under stimulatory glucose conditions. This was dependent in part on liraglutide activation of HCN channels, which also enhanced insulin secretion. Similarly, liraglutide activation of HCN channels also increased ß-cell Ca2+ oscillation frequency in islets from rodents exposed to a diabetogenic diet. Interestingly, liraglutide accelerated Ca2+ oscillations in a majority of islet δ cells, which showed synchronized Ca2+ oscillations equivalent to ß cells; therefore, we assessed if either cell type was driving this liraglutide-mediated islet Ca2+ response. Although δ-cell loss did not impact liraglutide-mediated increase in ß-cell Ca2+ oscillation frequency, ß-cell ablation attenuated liraglutide-facilitated acceleration of δ-cell Ca2+ oscillations. CONCLUSION: The data presented here show that liraglutide-induced stimulation of islet HCN channels augments Ca2+ oscillation frequency. As insulin secretion oscillates with ß-cell Ca2+ , these findings have important implications for pulsatile insulin secretion that is probably enhanced by liraglutide activation of HCN channels and therapeutics that target GLP-1Rs for treating diabetes. Furthermore, these studies suggest that liraglutide as well as GLP-1-based therapies enhance δ-cell Ca2+ oscillation frequency and somatostatin secretion kinetics in a ß-cell-dependent manner.


Subject(s)
Islets of Langerhans , Liraglutide , Animals , Glucagon-Like Peptide 1/metabolism , Glucagon-Like Peptide-1 Receptor/metabolism , Humans , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/metabolism , Insulin/metabolism , Insulin Secretion , Islets of Langerhans/metabolism , Liraglutide/pharmacology , Mice
8.
Development ; 148(16)2021 08 15.
Article in English | MEDLINE | ID: mdl-34345920

ABSTRACT

The melastatin subfamily of the transient receptor potential channels (TRPM) are regulators of pancreatic ß-cell function. TRPM7 is the most abundant islet TRPM channel; however, the role of TRPM7 in ß-cell function has not been determined. Here, we used various spatiotemporal transgenic mouse models to investigate how TRPM7 knockout influences pancreatic endocrine development, proliferation and function. Ablation of TRPM7 within pancreatic progenitors reduced pancreatic size, and α-cell and ß-cell mass. This resulted in modestly impaired glucose tolerance. However, TRPM7 ablation following endocrine specification or in adult mice did not impact endocrine expansion or glucose tolerance. As TRPM7 regulates cell proliferation, we assessed how TRPM7 influences ß-cell hyperplasia under insulin-resistant conditions. ß-Cell proliferation induced by high-fat diet was significantly decreased in TRPM7-deficient ß-cells. The endocrine roles of TRPM7 may be influenced by cation flux through the channel, and indeed we found that TRPM7 ablation altered ß-cell Mg2+ and reduced the magnitude of elevation in ß-cell Mg2+ during proliferation. Together, these findings revealed that TRPM7 controls pancreatic development and ß-cell proliferation, which is likely due to regulation of Mg2+ homeostasis.


Subject(s)
Cell Proliferation/genetics , Diet, High-Fat , Insulin Secretion/genetics , Insulin-Secreting Cells/metabolism , Insulin/metabolism , Pancreas/growth & development , Pancreas/metabolism , TRPM Cation Channels/metabolism , Animals , Cells, Cultured , Gene Knockout Techniques , Glucose Intolerance/genetics , Homeostasis/genetics , Magnesium/metabolism , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , TRPM Cation Channels/genetics
9.
Mol Metab ; 53: 101256, 2021 11.
Article in English | MEDLINE | ID: mdl-34048961

ABSTRACT

OBJECTIVE: Genetic and acquired abnormalities contribute to pancreatic ß-cell failure in diabetes. Transcription factors Hnf4α (MODY1) and FoxO1 are respective examples of these two components and act through ß-cell-specific enhancers. However, their relationship is unclear. METHODS: In this report, we show by genome-wide interrogation of chromatin modifications that ablation of FoxO1 in mature ß-cells enriches active Hnf4α enhancers according to a HOMER analysis. RESULTS: To model the functional significance of this predicted unusual enhancer utilization, we generated single and compound knockouts of FoxO1 and Hnf4α in ß-cells. Single knockout of either gene impaired insulin secretion in mechanistically distinct fashions as indicated by their responses to sulfonylurea and calcium fluxes. Surprisingly, the defective ß-cell secretory function of either single mutant in hyperglycemic clamps and isolated islets treated with various secretagogues was completely reversed in double mutants lacking FoxO1 and Hnf4α. Gene expression analyses revealed distinct epistatic modalities by which the two transcription factors regulate networks associated with reversal of ß-cell dysfunction. An antagonistic network regulating glycolysis, including ß-cell "disallowed" genes, and a synergistic network regulating protocadherins emerged as likely mediators of the functional restoration of insulin secretion. CONCLUSIONS: The findings provide evidence of antagonistic epistasis as a model of gene/environment interactions in the pathogenesis of ß-cell dysfunction.


Subject(s)
Forkhead Box Protein O1/metabolism , Hepatocyte Nuclear Factor 4/metabolism , Insulin-Secreting Cells/metabolism , Animals , Epistasis, Genetic/genetics , Forkhead Box Protein O1/deficiency , Forkhead Box Protein O1/genetics , Hepatocyte Nuclear Factor 4/deficiency , Hepatocyte Nuclear Factor 4/genetics , Mice , Mice, Knockout , Mutation
10.
JCI Insight ; 6(13)2021 07 08.
Article in English | MEDLINE | ID: mdl-34032641

ABSTRACT

Maturity-onset diabetes of the young (MODY) is a heterogeneous group of monogenic disorders of impaired pancreatic ß cell function. The mechanisms underlying MODY include ß cell KATP channel dysfunction (e.g., KCNJ11 [MODY13] or ABCC8 [MODY12] mutations); however, no other ß cell channelopathies have been associated with MODY to date. Here, we have identified a nonsynonymous coding variant in KCNK16 (NM_001135105: c.341T>C, p.Leu114Pro) segregating with MODY. KCNK16 is the most abundant and ß cell-restricted K+ channel transcript, encoding the two-pore-domain K+ channel TALK-1. Whole-cell K+ currents demonstrated a large gain of function with TALK-1 Leu114Pro compared with TALK-1 WT, due to greater single-channel activity. Glucose-stimulated membrane potential depolarization and Ca2+ influx were inhibited in mouse islets expressing TALK-1 Leu114Pro with less endoplasmic reticulum Ca2+ storage. TALK-1 Leu114Pro significantly blunted glucose-stimulated insulin secretion compared with TALK-1 WT in mouse and human islets. These data suggest that KCNK16 is a previously unreported gene for MODY.


Subject(s)
Calcium Signaling , Diabetes Mellitus, Type 2 , Insulin Secretion/physiology , Insulin-Secreting Cells/metabolism , Potassium Channels, Tandem Pore Domain/genetics , Potassium Channels, Tandem Pore Domain/metabolism , Animals , Blood Glucose/metabolism , Channelopathies/metabolism , Diabetes Mellitus, Type 2/genetics , Diabetes Mellitus, Type 2/metabolism , Gain of Function Mutation , Humans , Membrane Potentials/physiology , Mice
11.
Front Cell Dev Biol ; 9: 648791, 2021.
Article in English | MEDLINE | ID: mdl-34017831

ABSTRACT

Newly differentiated pancreatic ß cells lack proper insulin secretion profiles of mature functional ß cells. The global gene expression differences between paired immature and mature ß cells have been studied, but the dynamics of transcriptional events, correlating with temporal development of glucose-stimulated insulin secretion (GSIS), remain to be fully defined. This aspect is important to identify which genes and pathways are necessary for ß-cell development or for maturation, as defective insulin secretion is linked with diseases such as diabetes. In this study, we assayed through RNA sequencing the global gene expression across six ß-cell developmental stages in mice, spanning from ß-cell progenitor to mature ß cells. A computational pipeline then selected genes differentially expressed with respect to progenitors and clustered them into groups with distinct temporal patterns associated with biological functions and pathways. These patterns were finally correlated with experimental GSIS, calcium influx, and insulin granule formation data. Gene expression temporal profiling revealed the timing of important biological processes across ß-cell maturation, such as the deregulation of ß-cell developmental pathways and the activation of molecular machineries for vesicle biosynthesis and transport, signal transduction of transmembrane receptors, and glucose-induced Ca2+ influx, which were established over a week before ß-cell maturation completes. In particular, ß cells developed robust insulin secretion at high glucose several days after birth, coincident with the establishment of glucose-induced calcium influx. Yet the neonatal ß cells displayed high basal insulin secretion, which decreased to the low levels found in mature ß cells only a week later. Different genes associated with calcium-mediated processes, whose alterations are linked with insulin resistance and deregulation of glucose homeostasis, showed increased expression across ß-cell stages, in accordance with the temporal acquisition of proper GSIS. Our temporal gene expression pattern analysis provided a comprehensive database of the underlying molecular components and biological mechanisms driving ß-cell maturation at different temporal stages, which are fundamental for better control of the in vitro production of functional ß cells from human embryonic stem/induced pluripotent cell for transplantation-based type 1 diabetes therapy.

12.
J Physiol ; 598(21): 4887-4905, 2020 11.
Article in English | MEDLINE | ID: mdl-32790176

ABSTRACT

KEY POINTS: Tetraspanin (TSPAN) proteins regulate many biological processes, including intracellular calcium (Ca2+ ) handling. TSPAN-7 is enriched in pancreatic islet cells; however, the function of islet TSPAN-7 has not been identified. Here, we characterize how ß-cell TSPAN-7 regulates Ca2+ handling and hormone secretion. We find that TSPAN-7 reduces ß-cell glucose-stimulated Ca2+ entry, slows Ca2+ oscillation frequency and decreases glucose-stimulated insulin secretion. TSPAN-7 controls ß-cell function through a direct interaction with L-type voltage-dependent Ca2+ channels (CaV 1.2 and CaV 1.3), which reduces channel Ca2+ conductance. TSPAN-7 slows activation of CaV 1.2 and accelerates recovery from voltage-dependent inactivation; TSPAN-7 also slows CaV 1.3 inactivation kinetics. These findings strongly implicate TSPAN-7 as a key regulator in determining the set-point of glucose-stimulated Ca2+ influx and insulin secretion. ABSTRACT: Glucose-stimulated insulin secretion (GSIS) is regulated by calcium (Ca2+ ) entry into pancreatic ß-cells through voltage-dependent Ca2+ (CaV ) channels. Tetraspanin (TSPAN) transmembrane proteins control Ca2+ handling, and thus they may also modulate GSIS. TSPAN-7 is the most abundant islet TSPAN and immunostaining of mouse and human pancreatic slices shows that TSPAN-7 is highly expressed in ß- and α-cells; however, the function of islet TSPAN-7 has not been determined. Here, we show that TSPAN-7 knockdown (KD) increases glucose-stimulated Ca2+ influx into mouse and human ß-cells. Additionally, mouse ß-cell Ca2+ oscillation frequency was accelerated by TSPAN-7 KD. Because TSPAN-7 KD also enhanced Ca2+ entry when membrane potential was clamped with depolarization, the effect of TSPAN-7 on CaV channel activity was examined. TSPAN-7 KD enhanced L-type CaV currents in mouse and human ß-cells. Conversely, heterologous expression of TSPAN-7 with CaV 1.2 and CaV 1.3 L-type CaV channels decreased CaV currents and reduced Ca2+ influx through both channels. This was presumably the result of a direct interaction of TSPAN-7 and L-type CaV channels because TSPAN-7 coimmunoprecipitated with both CaV 1.2 and CaV 1.3 from primary human ß-cells and from a heterologous expression system. Finally, TSPAN-7 KD in human ß-cells increased basal (5.6 mM glucose) and stimulated (45 mM KCl + 14 mM glucose) insulin secretion. These findings strongly suggest that TSPAN-7 modulation of ß-cell L-type CaV channels is a key determinant of ß-cell glucose-stimulated Ca2+ entry and thus the set-point of GSIS.


Subject(s)
Glucagon-Secreting Cells , Insulin-Secreting Cells , Animals , Calcium/metabolism , Calcium Channels, L-Type/genetics , Calcium Channels, L-Type/metabolism , Glucagon-Secreting Cells/metabolism , Glucose/metabolism , Insulin/metabolism , Insulin Secretion , Insulin-Secreting Cells/metabolism , Mice
13.
Mol Metab ; 42: 101056, 2020 12.
Article in English | MEDLINE | ID: mdl-32736089

ABSTRACT

OBJECTIVE: Elevations in pancreatic α-cell intracellular Ca2+ ([Ca2+]i) lead to glucagon (GCG) secretion. Although glucose inhibits GCG secretion, how lactate and pyruvate control α-cell Ca2+ handling is unknown. Lactate enters cells through monocarboxylate transporters (MCTs) and is also produced during glycolysis by lactate dehydrogenase A (LDHA), an enzyme expressed in α-cells. As lactate activates ATP-sensitive K+ (KATP) channels in cardiomyocytes, lactate may also modulate α-cell KATP. Therefore, this study investigated how lactate signaling controls α-cell Ca2+ handling and GCG secretion. METHODS: Mouse and human islets were used in combination with confocal microscopy, electrophysiology, GCG immunoassays, and fluorescent thallium flux assays to assess α-cell Ca2+ handling, Vm, KATP currents, and GCG secretion. RESULTS: Lactate-inhibited mouse (75 ± 25%) and human (47 ± 9%) α-cell [Ca2+]i fluctuations only under low-glucose conditions (1 mM) but had no effect on ß- or δ-cells [Ca2+]i. Glyburide inhibition of KATP channels restored α-cell [Ca2+]i fluctuations in the presence of lactate. Lactate transport into α-cells via MCTs hyperpolarized mouse (14 ± 1 mV) and human (12 ± 1 mV) α-cell Vm and activated KATP channels. Interestingly, pyruvate showed a similar KATP activation profile and α-cell [Ca2+]i inhibition as lactate. Lactate-induced inhibition of α-cell [Ca2+]i influx resulted in reduced GCG secretion in mouse (62 ± 6%) and human (43 ± 13%) islets. CONCLUSIONS: These data demonstrate for the first time that lactate entry into α-cells through MCTs results in KATP activation, Vm hyperpolarization, reduced [Ca2+]i, and inhibition of GCG secretion. Thus, taken together, these data indicate that lactate either within α-cells and/or elevated in serum could serve as important modulators of α-cell function.


Subject(s)
Glucagon-Secreting Cells/metabolism , Glucagon/metabolism , Lactic Acid/metabolism , Pyruvic Acid/metabolism , Animals , Calcium/metabolism , Cell Line , Cell Membrane/physiology , Glucagon/physiology , Glucagon-Secreting Cells/physiology , Glucose/pharmacology , Humans , Islets of Langerhans/metabolism , KATP Channels/metabolism , Lactic Acid/pharmacology , Male , Membrane Potentials/drug effects , Membrane Potentials/physiology , Mice , Mice, Inbred C57BL , Mice, Transgenic , Pancreas/metabolism , Primary Cell Culture , Pyruvic Acid/pharmacology
14.
J Pharmacol Exp Ther ; 370(3): 350-359, 2019 09.
Article in English | MEDLINE | ID: mdl-31201216

ABSTRACT

Glucose-stimulated insulin secretion from pancreatic ß-cells is controlled by ATP-regulated potassium (KATP) channels composed of Kir6.2 and sulfonylurea receptor 1 (SUR1) subunits. The KATP channel-opener diazoxide is FDA-approved for treating hyperinsulinism and hypoglycemia but suffers from off-target effects on vascular KATP channels and other ion channels. The development of more specific openers would provide critically needed tool compounds for probing the therapeutic potential of Kir6.2/SUR1 activation. Here, we characterize a novel scaffold activator of Kir6.2/SUR1 that our group recently discovered in a high-throughput screen. Optimization efforts with medicinal chemistry identified key structural elements that are essential for VU0071063-dependent opening of Kir6.2/SUR1. VU0071063 has no effects on heterologously expressed Kir6.1/SUR2B channels or ductus arteriole tone, indicating it does not open vascular KATP channels. VU0071063 induces hyperpolarization of ß-cell membrane potential and inhibits insulin secretion more potently than diazoxide. VU0071063 exhibits metabolic and pharmacokinetic properties that are favorable for an in vivo probe and is brain penetrant. Administration of VU0071063 inhibits glucose-stimulated insulin secretion and glucose-lowering in mice. Taken together, these studies indicate that VU0071063 is a more potent and specific opener of Kir6.2/SUR1 than diazoxide and should be useful as an in vitro and in vivo tool compound for investigating the therapeutic potential of Kir6.2/SUR1 expressed in the pancreas and brain.


Subject(s)
Ion Channel Gating/drug effects , Potassium Channels, Inwardly Rectifying/metabolism , Sulfonylurea Receptors/metabolism , Xanthines/pharmacology , Xanthines/pharmacokinetics , Animals , Ductus Arteriosus/drug effects , Ductus Arteriosus/physiology , Glucose/pharmacology , HEK293 Cells , Humans , Insulin Secretion/drug effects , Insulin-Secreting Cells/cytology , Insulin-Secreting Cells/drug effects , Insulin-Secreting Cells/metabolism , Mice , Structure-Activity Relationship , Vasodilation/drug effects , Xanthines/chemistry
15.
Am J Physiol Endocrinol Metab ; 316(4): E646-E659, 2019 04 01.
Article in English | MEDLINE | ID: mdl-30694690

ABSTRACT

Pancreatic α-cells exhibit oscillations in cytosolic Ca2+ (Ca2+c), which control pulsatile glucagon (GCG) secretion. However, the mechanisms that modulate α-cell Ca2+c oscillations have not been elucidated. As ß-cell Ca2+c oscillations are regulated in part by Ca2+-activated K+ (Kslow) currents, this work investigated the role of Kslow in α-cell Ca2+ handling and GCG secretion. α-Cells displayed Kslow currents that were dependent on Ca2+ influx through L- and P/Q-type voltage-dependent Ca2+ channels (VDCCs) as well as Ca2+ released from endoplasmic reticulum stores. α-Cell Kslow was decreased by small-conductance Ca2+-activated K+ (SK) channel inhibitors apamin and UCL 1684, large-conductance Ca2+-activated K+ (BK) channel inhibitor iberiotoxin (IbTx), and intermediate-conductance Ca2+-activated K+ (IK) channel inhibitor TRAM 34. Moreover, partial inhibition of α-cell Kslow with apamin depolarized membrane potential ( Vm) (3.8 ± 0.7 mV) and reduced action potential (AP) amplitude (10.4 ± 1.9 mV). Although apamin transiently increased Ca2+ influx into α-cells at low glucose (42.9 ± 10.6%), sustained SK (38.5 ± 10.4%) or BK channel inhibition (31.0 ± 11.7%) decreased α-cell Ca2+ influx. Total α-cell Ca2+c was similarly reduced (28.3 ± 11.1%) following prolonged treatment with high glucose, but it was not decreased further by SK or BK channel inhibition. Consistent with reduced α-cell Ca2+c following prolonged Kslow inhibition, apamin decreased GCG secretion from mouse (20.4 ± 4.2%) and human (27.7 ± 13.1%) islets at low glucose. These data demonstrate that Kslow activation provides a hyperpolarizing influence on α-cell Vm that sustains Ca2+ entry during hypoglycemic conditions, presumably by preventing voltage-dependent inactivation of P/Q-type VDCCs. Thus, when α-cell Ca2+c is elevated during secretagogue stimulation, Kslow activation helps to preserve GCG secretion.


Subject(s)
Calcium Channels/metabolism , Calcium/metabolism , Glucagon-Secreting Cells/metabolism , Glucagon/metabolism , Glucose/metabolism , Potassium Channels, Calcium-Activated/metabolism , Alkanes/pharmacology , Animals , Apamin/pharmacology , Calcium Channels, L-Type/metabolism , Calcium Channels, P-Type/metabolism , Calcium Channels, Q-Type/metabolism , Endoplasmic Reticulum/metabolism , Mice , Mice, Transgenic , Patch-Clamp Techniques , Peptides/pharmacology , Potassium Channel Blockers/pharmacology , Potassium Channels, Calcium-Activated/antagonists & inhibitors , Pyrazoles/pharmacology , Quinolinium Compounds/pharmacology
16.
Dev Cell ; 48(1): 49-63.e7, 2019 01 07.
Article in English | MEDLINE | ID: mdl-30620902

ABSTRACT

In the developing pancreas, transient Neurog3-expressing progenitors give rise to four major islet cell types: α, ß, δ, and γ; when and how the Neurog3+ cells choose cell fate is unknown. Using single-cell RNA-seq, trajectory analysis, and combinatorial lineage tracing, we showed here that the Neurog3+ cells co-expressing Myt1 (i.e., Myt1+Neurog3+) were biased toward ß cell fate, while those not simultaneously expressing Myt1 (Myt1-Neurog3+) favored α fate. Myt1 manipulation only marginally affected α versus ß cell specification, suggesting Myt1 as a marker but not determinant for islet-cell-type specification. The Myt1+Neurog3+ cells displayed higher Dnmt1 expression and enhancer methylation at Arx, an α-fate-promoting gene. Inhibiting Dnmts in pancreatic progenitors promoted α cell specification, while Dnmt1 overexpression or Arx enhancer hypermethylation favored ß cell production. Moreover, the pancreatic progenitors contained distinct Arx enhancer methylation states without transcriptionally definable sub-populations, a phenotype independent of Neurog3 activity. These data suggest that Neurog3-independent methylation on fate-determining gene enhancers specifies distinct endocrine-cell programs.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/metabolism , Cell Differentiation/physiology , Islets of Langerhans/cytology , Nerve Tissue Proteins/metabolism , Organogenesis/physiology , Pancreas/metabolism , Animals , Cell Differentiation/genetics , Cell Lineage/physiology , Endocrine Cells/metabolism , Homeodomain Proteins/metabolism , Insulin-Secreting Cells/metabolism , Mice , Transcription Factors/metabolism
17.
Dev Cell ; 45(3): 347-361.e5, 2018 05 07.
Article in English | MEDLINE | ID: mdl-29656931

ABSTRACT

Islet ß cells from newborn mammals exhibit high basal insulin secretion and poor glucose-stimulated insulin secretion (GSIS). Here we show that ß cells of newborns secrete more insulin than adults in response to similar intracellular Ca2+ concentrations, suggesting differences in the Ca2+ sensitivity of insulin secretion. Synaptotagmin 4 (Syt4), a non-Ca2+ binding paralog of the ß cell Ca2+ sensor Syt7, increased by ∼8-fold during ß cell maturation. Syt4 ablation increased basal insulin secretion and compromised GSIS. Precocious Syt4 expression repressed basal insulin secretion but also impaired islet morphogenesis and GSIS. Syt4 was localized on insulin granules and Syt4 levels inversely related to the number of readily releasable vesicles. Thus, transcriptional regulation of Syt4 affects insulin secretion; Syt4 expression is regulated in part by Myt transcription factors, which repress Syt4 transcription. Finally, human SYT4 regulated GSIS in EndoC-ßH1 cells, a human ß cell line. These findings reveal the role that altered Ca2+ sensing plays in regulating ß cell maturation.


Subject(s)
Calcium/pharmacology , Glucose/pharmacology , Insulin-Secreting Cells/cytology , Insulin/metabolism , Synaptotagmins/metabolism , Animals , Biological Transport , Cell Differentiation/drug effects , Female , Gene Expression Regulation/drug effects , Humans , Hypoglycemic Agents/metabolism , Insulin Secretion , Insulin-Secreting Cells/drug effects , Insulin-Secreting Cells/metabolism , Male , Mice , Mice, Knockout , Sweetening Agents/pharmacology , Synaptotagmins/genetics
18.
JCI Insight ; 3(8)2018 04 19.
Article in English | MEDLINE | ID: mdl-29669939

ABSTRACT

Cystic fibrosis-related (CF-related) diabetes (CFRD) is an increasingly common and devastating comorbidity of CF, affecting approximately 35% of adults with CF. However, the underlying causes of CFRD are unclear. Here, we examined cystic fibrosis transmembrane conductance regulator (CFTR) islet expression and whether the CFTR participates in islet endocrine cell function using murine models of ß cell CFTR deletion and normal and CF human pancreas and islets. Specific deletion of CFTR from murine ß cells did not affect ß cell function. In human islets, CFTR mRNA was minimally expressed, and CFTR protein and electrical activity were not detected. Isolated CF/CFRD islets demonstrated appropriate insulin and glucagon secretion, with few changes in key islet-regulatory transcripts. Furthermore, approximately 65% of ß cell area was lost in CF donors, compounded by pancreatic remodeling and immune infiltration of the islet. These results indicate that CFRD is caused by ß cell loss and intraislet inflammation in the setting of a complex pleiotropic disease and not by intrinsic islet dysfunction from CFTR mutation.


Subject(s)
Cystic Fibrosis Transmembrane Conductance Regulator/genetics , Cystic Fibrosis/etiology , Diabetes Complications/genetics , Diabetes Mellitus/genetics , Islets of Langerhans/metabolism , Adult , Animals , Cystic Fibrosis/genetics , Cystic Fibrosis/pathology , Cystic Fibrosis/veterinary , Diabetes Complications/veterinary , Diabetes Mellitus/epidemiology , Diabetes Mellitus/veterinary , Female , Gene Deletion , Glucagon/metabolism , Humans , Inflammation/complications , Inflammation/metabolism , Insulin/metabolism , Insulin-Secreting Cells/metabolism , Insulin-Secreting Cells/pathology , Male , Mice , Mutation
19.
Mol Metab ; 9: 84-97, 2018 03.
Article in English | MEDLINE | ID: mdl-29402588

ABSTRACT

OBJECTIVE: Single-cell RNA sequencing studies have revealed that the type-2 diabetes associated two-pore domain K+ (K2P) channel TALK-1 is abundantly expressed in somatostatin-secreting δ-cells. However, a physiological role for TALK-1 in δ-cells remains unknown. We previously determined that in ß-cells, K+ flux through endoplasmic reticulum (ER)-localized TALK-1 channels enhances ER Ca2+ leak, modulating Ca2+ handling and insulin secretion. As glucose amplification of islet somatostatin release relies on Ca2+-induced Ca2+ release (CICR) from the δ-cell ER, we investigated whether TALK-1 modulates δ-cell Ca2+ handling and somatostatin secretion. METHODS: To define the functions of islet δ-cell TALK-1 channels, we generated control and TALK-1 channel-deficient (TALK-1 KO) mice expressing fluorescent reporters specifically in δ- and α-cells to facilitate cell type identification. Using immunofluorescence, patch clamp electrophysiology, Ca2+ imaging, and hormone secretion assays, we assessed how TALK-1 channel activity impacts δ- and α-cell function. RESULTS: TALK-1 channels are expressed in both mouse and human δ-cells, where they modulate glucose-stimulated changes in cytosolic Ca2+ and somatostatin secretion. Measurement of cytosolic Ca2+ levels in response to membrane potential depolarization revealed enhanced CICR in TALK-1 KO δ-cells that could be abolished by depleting ER Ca2+ with sarco/endoplasmic reticulum Ca2+ ATPase (SERCA) inhibitors. Consistent with elevated somatostatin inhibitory tone, we observed significantly reduced glucagon secretion and α-cell Ca2+ oscillations in TALK-1 KO islets, and found that blockade of α-cell somatostatin signaling with a somatostatin receptor 2 (SSTR2) antagonist restored glucagon secretion in TALK-1 KO islets. CONCLUSIONS: These data indicate that TALK-1 reduces δ-cell cytosolic Ca2+ elevations and somatostatin release by limiting δ-cell CICR, modulating the intraislet paracrine signaling mechanisms that control glucagon secretion.


Subject(s)
Calcium Signaling , Potassium Channels, Tandem Pore Domain/metabolism , Somatostatin-Secreting Cells/metabolism , Somatostatin/metabolism , Animals , Cells, Cultured , Cytoplasm/metabolism , Endoplasmic Reticulum/metabolism , Glucagon/metabolism , Humans , Male , Mice , Mice, Inbred C57BL , Potassium Channels, Tandem Pore Domain/genetics
20.
Sci Rep ; 8(1): 1158, 2018 01 18.
Article in English | MEDLINE | ID: mdl-29348619

ABSTRACT

Cytokines present during low-grade inflammation contribute to ß-cell dysfunction and diabetes. Cytokine signaling disrupts ß-cell glucose-stimulated Ca2+ influx (GSCI) and endoplasmic reticulum (ER) Ca2+ ([Ca2+]ER) handling, leading to diminished glucose-stimulated insulin secretion (GSIS). However, cytokine-mediated changes in ion channel activity that alter ß-cell Ca2+ handling remain unknown. Here we investigated the role of K+ currents in cytokine-mediated ß-cell dysfunction. Kslow currents, which control the termination of intracellular Ca2+ ([Ca2+]i) oscillations, were reduced following cytokine exposure. As a consequence, [Ca2+]i and electrical oscillations were accelerated. Cytokine exposure also increased basal islet [Ca2+]i and decreased GSCI. The effect of cytokines on TALK-1 K+ currents were also examined as TALK-1 mediates Kslow by facilitating [Ca2+]ER release. Cytokine exposure decreased KCNK16 transcript abundance and associated TALK-1 protein expression, increasing [Ca2+]ER storage while maintaining 2nd phase GSCI and GSIS. This adaptive Ca2+ response was absent in TALK-1 KO islets, which exhibited decreased 2nd phase GSCI and diminished GSIS. These findings suggest that Kslow and TALK-1 currents play important roles in altered ß-cell Ca2+ handling and electrical activity during low-grade inflammation. These results also reveal that a cytokine-mediated reduction in TALK-1 serves an acute protective role in ß-cells by facilitating increased Ca2+ content to maintain GSIS.


Subject(s)
Calcium/metabolism , Insulin-Secreting Cells/drug effects , Insulin/metabolism , Interferon-gamma/pharmacology , Interleukin-1beta/pharmacology , Potassium Channels, Tandem Pore Domain/genetics , Tumor Necrosis Factor-alpha/pharmacology , Adult , Animals , Female , Gene Expression Regulation , Glucose/metabolism , Humans , Insulin Secretion , Insulin-Secreting Cells/cytology , Insulin-Secreting Cells/metabolism , Ion Transport , Islets of Langerhans/cytology , Islets of Langerhans/drug effects , Islets of Langerhans/metabolism , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Potassium/metabolism , Potassium Channels, Tandem Pore Domain/metabolism , Primary Cell Culture , RNA, Messenger/genetics , RNA, Messenger/metabolism , Sarcoplasmic Reticulum Calcium-Transporting ATPases/genetics , Sarcoplasmic Reticulum Calcium-Transporting ATPases/metabolism , Tissue Culture Techniques
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