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1.
Nat Immunol ; 21(3): 331-342, 2020 03.
Article in English | MEDLINE | ID: mdl-32066950

ABSTRACT

Germinal center B cells (GCBCs) are critical for generating long-lived humoral immunity. How GCBCs meet the energetic challenge of rapid proliferation is poorly understood. Dividing lymphocytes typically rely on aerobic glycolysis over oxidative phosphorylation for energy. Here we report that GCBCs are exceptional among proliferating B and T cells, as they actively oxidize fatty acids (FAs) and conduct minimal glycolysis. In vitro, GCBCs had a very low glycolytic extracellular acidification rate but consumed oxygen in response to FAs. [13C6]-glucose feeding revealed that GCBCs generate significantly less phosphorylated glucose and little lactate. Further, GCBCs did not metabolize glucose into tricarboxylic acid (TCA) cycle intermediates. Conversely, [13C16]-palmitic acid labeling demonstrated that GCBCs generate most of their acetyl-CoA and acetylcarnitine from FAs. FA oxidation was functionally important, as drug-mediated and genetic dampening of FA oxidation resulted in a selective reduction of GCBCs. Hence, GCBCs appear to uncouple rapid proliferation from aerobic glycolysis.


Subject(s)
B-Lymphocytes/metabolism , Fatty Acids/metabolism , Germinal Center/metabolism , Animals , B-Lymphocytes/immunology , Cell Proliferation , Energy Metabolism , Fatty Acids, Nonesterified/metabolism , Gene Expression , Germinal Center/cytology , Germinal Center/immunology , Glucose/metabolism , Glycolysis/genetics , In Vitro Techniques , Metabolome , Mice , Mice, Inbred BALB C , Mice, Knockout , Oxidation-Reduction , Oxidative Phosphorylation , Oxygen Consumption
2.
Cell ; 160(4): 745-758, 2015 Feb 12.
Article in English | MEDLINE | ID: mdl-25662011

ABSTRACT

Impaired insulin-mediated suppression of hepatic glucose production (HGP) plays a major role in the pathogenesis of type 2 diabetes (T2D), yet the molecular mechanism by which this occurs remains unknown. Using a novel in vivo metabolomics approach, we show that the major mechanism by which insulin suppresses HGP is through reductions in hepatic acetyl CoA by suppression of lipolysis in white adipose tissue (WAT) leading to reductions in pyruvate carboxylase flux. This mechanism was confirmed in mice and rats with genetic ablation of insulin signaling and mice lacking adipose triglyceride lipase. Insulin's ability to suppress hepatic acetyl CoA, PC activity, and lipolysis was lost in high-fat-fed rats, a phenomenon reversible by IL-6 neutralization and inducible by IL-6 infusion. Taken together, these data identify WAT-derived hepatic acetyl CoA as the main regulator of HGP by insulin and link it to inflammation-induced hepatic insulin resistance associated with obesity and T2D.


Subject(s)
Acetyl Coenzyme A/metabolism , Insulin Resistance , Liver/metabolism , Panniculitis/metabolism , Adipose Tissue, White/chemistry , Adolescent , Animals , Diabetes Mellitus, Type 2 , Diet, High-Fat , Glucose/metabolism , Humans , Hyperglycemia , Interleukin-6/analysis , Lipolysis , Male , Mice , Obesity/metabolism , Rats, Sprague-Dawley
3.
Cell ; 156(1-2): 304-16, 2014 Jan 16.
Article in English | MEDLINE | ID: mdl-24439384

ABSTRACT

A clear relationship exists between visceral obesity and type 2 diabetes, whereas subcutaneous obesity is comparatively benign. Here, we show that adipocyte-specific deletion of the coregulatory protein PRDM16 caused minimal effects on classical brown fat but markedly inhibited beige adipocyte function in subcutaneous fat following cold exposure or ß3-agonist treatment. These animals developed obesity on a high-fat diet, with severe insulin resistance and hepatic steatosis. They also showed altered fat distribution with markedly increased subcutaneous adiposity. Subcutaneous adipose tissue in mutant mice acquired many key properties of visceral fat, including decreased thermogenic and increased inflammatory gene expression and increased macrophage accumulation. Transplantation of subcutaneous fat into mice with diet-induced obesity showed a loss of metabolic benefit when tissues were derived from PRDM16 mutant animals. These findings indicate that PRDM16 and beige adipocytes are required for the "browning" of white fat and the healthful effects of subcutaneous adipose tissue.


Subject(s)
Adipose Tissue, Brown/metabolism , Adipose Tissue/metabolism , DNA-Binding Proteins/metabolism , Obesity/metabolism , Transcription Factors/metabolism , Adipocytes/metabolism , Animals , DNA-Binding Proteins/genetics , Diet, High-Fat , Insulin Resistance , Mice , Mice, Knockout , Transcription Factors/genetics
4.
Cell ; 155(2): 397-409, 2013 Oct 10.
Article in English | MEDLINE | ID: mdl-24120138

ABSTRACT

The pyruvate kinase M2 isoform (PKM2) is expressed in cancer and plays a role in regulating anabolic metabolism. To determine whether PKM2 is required for tumor formation or growth, we generated mice with a conditional allele that abolishes PKM2 expression without disrupting PKM1 expression. PKM2 deletion accelerated mammary tumor formation in a Brca1-loss-driven model of breast cancer. PKM2 null tumors displayed heterogeneous PKM1 expression, with PKM1 found in nonproliferating tumor cells and no detectable pyruvate kinase expression in proliferating cells. This suggests that PKM2 is not necessary for tumor cell proliferation and implies that the inactive state of PKM2 is associated with the proliferating cell population within tumors, whereas nonproliferating tumor cells require active pyruvate kinase. Consistent with these findings, variable PKM2 expression and heterozygous PKM2 mutations are found in human tumors. These data suggest that regulation of PKM2 activity supports the different metabolic requirements of proliferating and nonproliferating tumor cells.


Subject(s)
Breast Neoplasms/metabolism , Gene Deletion , Mammary Neoplasms, Experimental/metabolism , Pyruvate Kinase/genetics , Pyruvate Kinase/metabolism , Animals , Base Sequence , Breast Neoplasms/genetics , Breast Neoplasms/pathology , Exons , Female , Gene Knockout Techniques , Heterografts , Humans , Isoenzymes/genetics , Isoenzymes/metabolism , Mammary Neoplasms, Experimental/genetics , Mammary Neoplasms, Experimental/pathology , Mice , Mice, Inbred C57BL , Models, Molecular , Molecular Sequence Data , Mutagenesis , Mutation , Neoplasm Metastasis , Neoplasm Transplantation , RNA Splicing
5.
Mol Cell ; 69(4): 689-698.e7, 2018 02 15.
Article in English | MEDLINE | ID: mdl-29429925

ABSTRACT

Endothelial-to-mesenchymal transition (EndoMT) is a cellular process often initiated by the transforming growth factor ß (TGF-ß) family of ligands. Although required for normal heart valve development, deregulated EndoMT is linked to a wide range of pathological conditions. Here, we demonstrate that endothelial fatty acid oxidation (FAO) is a critical in vitro and in vivo regulator of EndoMT. We further show that this FAO-dependent metabolic regulation of EndoMT occurs through alterations in intracellular acetyl-CoA levels. Disruption of FAO via conditional deletion of endothelial carnitine palmitoyltransferase II (Cpt2E-KO) augments the magnitude of embryonic EndoMT, resulting in thickening of cardiac valves. Consistent with the known pathological effects of EndoMT, adult Cpt2E-KO mice demonstrate increased permeability in multiple vascular beds. Taken together, these results demonstrate that endothelial FAO is required to maintain endothelial cell fate and that therapeutic manipulation of endothelial metabolism could provide the basis for treating a growing number of EndoMT-linked pathological conditions.


Subject(s)
Carnitine O-Palmitoyltransferase/physiology , Endothelium, Vascular/metabolism , Epithelial-Mesenchymal Transition , Fatty Acids/chemistry , 3-Hydroxyacyl CoA Dehydrogenases , Acetyl Coenzyme A/metabolism , Acetyl-CoA C-Acyltransferase , Animals , Carbon-Carbon Double Bond Isomerases , Cells, Cultured , Endothelium, Vascular/cytology , Enoyl-CoA Hydratase , Female , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Oxidation-Reduction , Racemases and Epimerases , Signal Transduction , Transforming Growth Factor beta/metabolism
6.
Immunity ; 45(3): 583-596, 2016 09 20.
Article in English | MEDLINE | ID: mdl-27566941

ABSTRACT

Mononuclear phagocytes (MNPs) are a highly heterogeneous group of cells that play important roles in maintaining the body's homeostasis. Here, we found CD301b (also known as MGL2), a lectin commonly used as a marker for alternatively activated macrophages, was selectively expressed by a subset of CD11b(+)CD11c(+)MHCII(+) MNPs in multiple organs including adipose tissues. Depleting CD301b(+) MNPs in vivo led to a significant weight loss with increased insulin sensitivity and a marked reduction in serum Resistin-like molecule (RELM) α, a multifunctional cytokine produced by MNPs. Reconstituting RELMα in CD301b(+) MNP-depleted animals restored body weight and normoglycemia. Thus, CD301b(+) MNPs play crucial roles in maintaining glucose metabolism and net energy balance.


Subject(s)
Energy Metabolism/physiology , Intercellular Signaling Peptides and Proteins/metabolism , Lectins, C-Type/metabolism , Phagocytes/metabolism , Adipose Tissue/metabolism , Animals , Female , Glucose , Insulin/metabolism , Insulin Resistance/physiology , Macrophages/metabolism , Male , Mice , Mice, Inbred C57BL
7.
Am J Respir Cell Mol Biol ; 70(5): 379-391, 2024 May.
Article in English | MEDLINE | ID: mdl-38301257

ABSTRACT

GDF15 (growth differentiation factor 15) is a stress cytokine with several proposed roles, including support of stress erythropoiesis. Higher circulating GDF15 levels are prognostic of mortality during acute respiratory distress syndrome, but the cellular sources and downstream effects of GDF15 during pathogen-mediated lung injury are unclear. We quantified GDF15 in lower respiratory tract biospecimens and plasma from patients with acute respiratory failure. Publicly available data from severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection were reanalyzed. We used mouse models of hemorrhagic acute lung injury mediated by Pseudomonas aeruginosa exoproducts in wild-type mice and mice genetically deficient for Gdf15 or its putative receptor, Gfral. In critically ill humans, plasma levels of GDF15 correlated with lower respiratory tract levels and were higher in nonsurvivors. SARS-CoV-2 infection induced GDF15 expression in human lung epithelium, and lower respiratory tract GDF15 levels were higher in coronavirus disease (COVID-19) nonsurvivors. In mice, intratracheal P. aeruginosa type II secretion system exoproducts were sufficient to induce airspace and plasma release of GDF15, which was attenuated with epithelial-specific deletion of Gdf15. Mice with global Gdf15 deficiency had decreased airspace hemorrhage, an attenuated cytokine profile, and an altered lung transcriptional profile during injury induced by P. aeruginosa type II secretion system exoproducts, which was not recapitulated in mice deficient for Gfral. Airspace GDF15 reconstitution did not significantly modulate key lung cytokine levels but increased circulating erythrocyte counts. Lung epithelium releases GDF15 during pathogen injury, which is associated with plasma levels in humans and mice and can increase erythrocyte counts in mice, suggesting a novel lung-blood communication pathway.


Subject(s)
COVID-19 , Growth Differentiation Factor 15 , Lung , Pseudomonas aeruginosa , SARS-CoV-2 , Growth Differentiation Factor 15/genetics , Growth Differentiation Factor 15/metabolism , Animals , COVID-19/metabolism , COVID-19/virology , Humans , Mice , Lung/metabolism , Lung/pathology , Lung/virology , Male , Pseudomonas Infections/metabolism , Acute Lung Injury/pathology , Acute Lung Injury/metabolism , Female , Mice, Inbred C57BL , Mice, Knockout , Respiratory Mucosa/metabolism , Respiratory Mucosa/pathology , Disease Models, Animal
8.
Am J Physiol Renal Physiol ; 326(6): F1041-F1053, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38660713

ABSTRACT

Beyond glycemic control, SGLT2 inhibitors (SGLT2is) have protective effects on cardiorenal function. Renoprotection has been suggested to involve inhibition of NHE3 leading to reduced ATP-dependent tubular workload and mitochondrial oxygen consumption. NHE3 activity is also important for regulation of endosomal pH, but the effects of SGLT2i on endocytosis are unknown. We used a highly differentiated cell culture model of proximal tubule (PT) cells to determine the direct effects of SGLT2i on Na+-dependent fluid transport and endocytic uptake in this nephron segment. Strikingly, canagliflozin but not empagliflozin reduced fluid transport across cell monolayers and dramatically inhibited endocytic uptake of albumin. These effects were independent of glucose and occurred at clinically relevant concentrations of drug. Canagliflozin acutely inhibited surface NHE3 activity, consistent with a direct effect, but did not affect endosomal pH or NHE3 phosphorylation. In addition, canagliflozin rapidly and selectively inhibited mitochondrial complex I activity. Inhibition of mitochondrial complex I by metformin recapitulated the effects of canagliflozin on endocytosis and fluid transport, whereas modulation of downstream effectors AMPK and mTOR did not. Mice given a single dose of canagliflozin excreted twice as much urine over 24 h compared with empagliflozin-treated mice despite similar water intake. We conclude that canagliflozin selectively suppresses Na+-dependent fluid transport and albumin uptake in PT cells via direct inhibition of NHE3 and of mitochondrial function upstream of the AMPK/mTOR axis. These additional targets of canagliflozin contribute significantly to reduced PT Na+-dependent fluid transport in vivo.NEW & NOTEWORTHY Reduced NHE3-mediated Na+ transport has been suggested to underlie the cardiorenal protection provided by SGLT2 inhibitors. We found that canagliflozin, but not empagliflozin, reduced NHE3-dependent fluid transport and endocytic uptake in cultured proximal tubule cells. These effects were independent of SGLT2 activity and resulted from inhibition of mitochondrial complex I and NHE3. Studies in mice are consistent with greater effects of canagliflozin versus empagliflozin on fluid transport. Our data suggest that these selective effects of canagliflozin contribute to reduced Na+-dependent transport in proximal tubule cells.


Subject(s)
Canagliflozin , Kidney Tubules, Proximal , Sodium-Glucose Transporter 2 Inhibitors , Sodium-Hydrogen Exchanger 3 , Animals , Kidney Tubules, Proximal/drug effects , Kidney Tubules, Proximal/metabolism , Kidney Tubules, Proximal/enzymology , Sodium-Hydrogen Exchanger 3/metabolism , Canagliflozin/pharmacology , Sodium-Glucose Transporter 2 Inhibitors/pharmacology , Mice , Male , Sodium-Glucose Transporter 2/metabolism , Endocytosis/drug effects , Mice, Inbred C57BL , Albumins/metabolism , Mitochondria/metabolism , Mitochondria/drug effects , Benzhydryl Compounds , Glucosides
9.
Am J Pathol ; 192(9): 1259-1281, 2022 09.
Article in English | MEDLINE | ID: mdl-35718058

ABSTRACT

Nonalcoholic fatty liver disease (NAFLD) is an epidemic affecting 30% of the US population. It is characterized by insulin resistance, and by defective lipid metabolism and mitochondrial dysfunction in the liver. SLC25A34 is a major repressive target of miR-122, a miR that has a central role in NAFLD and liver cancer. However, little is known about the function of SLC25A34. To investigate SLC25A34 in vitro, mitochondrial respiration and bioenergetics were examined using hepatocytes depleted of Slc25a34 or overexpressing Slc25a34. To test the function of SLC25A34 in vivo, a hepatocyte-specific knockout mouse was generated, and loss of SLC25A34 was assessed in mice maintained on a chow diet and a fast-food diet (FFD), a model for NAFLD. Hepatocytes depleted of Slc25a34 displayed increased mitochondrial biogenesis, lipid synthesis, and ADP/ATP ratio; Slc25a34 overexpression had the opposite effect. In the knockout model on chow diet, SLC25A34 loss modestly affected liver function (altered glucose metabolism was the most pronounced defect). RNA-sequencing revealed changes in metabolic processes, especially fatty acid metabolism. After 2 months on FFD, knockouts had a more severe phenotype, with increased lipid content and impaired glucose tolerance, which was attenuated after longer FFD feeding (6 months). This work thus presents a novel model for studying SLC25A34 in vivo in which SLC25A34 plays a role in mitochondrial respiration and bioenergetics during NAFLD.


Subject(s)
MicroRNAs , Non-alcoholic Fatty Liver Disease , Animals , Diet, High-Fat , Glucose/metabolism , Hepatocytes/metabolism , Homeostasis , Lipid Metabolism , Lipids , Liver/metabolism , Mice , Mice, Inbred C57BL , Mice, Knockout , MicroRNAs/genetics , Non-alcoholic Fatty Liver Disease/metabolism
10.
Nat Chem Biol ; 17(3): 298-306, 2021 03.
Article in English | MEDLINE | ID: mdl-33495648

ABSTRACT

The adenosine monophosphate (AMP)-activated protein kinase (Ampk) is a central regulator of metabolic pathways, and increasing Ampk activity has been considered to be an attractive therapeutic target. Here, we have identified an orphan ubiquitin E3 ligase subunit protein, Fbxo48, that targets the active, phosphorylated Ampkα (pAmpkα) for polyubiquitylation and proteasomal degradation. We have generated a novel Fbxo48 inhibitory compound, BC1618, whose potency in stimulating Ampk-dependent signaling greatly exceeds 5-aminoimidazole-4-carboxamide-1-ß-ribofuranoside (AICAR) or metformin. This compound increases the biological activity of Ampk not by stimulating the activation of Ampk, but rather by preventing activated pAmpkα from Fbxo48-mediated degradation. We demonstrate that, consistent with augmenting Ampk activity, BC1618 promotes mitochondrial fission, facilitates autophagy and improves hepatic insulin sensitivity in high-fat-diet-induced obese mice. Hence, we provide a unique bioactive compound that inhibits pAmpkα disposal. Together, these results define a new pathway regulating Ampk biological activity and demonstrate the potential utility of modulating this pathway for therapeutic benefit.


Subject(s)
AMP-Activated Protein Kinases/genetics , Hypoglycemic Agents/pharmacology , Obesity/drug therapy , Proteasome Endopeptidase Complex/drug effects , Protein Processing, Post-Translational/drug effects , Ubiquitin-Protein Ligases/genetics , AMP-Activated Protein Kinases/metabolism , Aminoimidazole Carboxamide/analogs & derivatives , Aminoimidazole Carboxamide/pharmacology , Animals , Cell Line, Transformed , Diet, High-Fat , Epithelial Cells/cytology , Epithelial Cells/drug effects , Epithelial Cells/metabolism , F-Box Proteins , Humans , Hypoglycemic Agents/chemical synthesis , Insulin Resistance , Metformin/pharmacology , Mice , Mice, Inbred C57BL , Mice, Obese , Mitochondrial Dynamics/drug effects , Obesity/etiology , Obesity/genetics , Obesity/metabolism , Phosphorylation , Polyubiquitin/genetics , Polyubiquitin/metabolism , Proteasome Endopeptidase Complex/metabolism , Protein Stability/drug effects , Proteolysis/drug effects , Ribonucleotides/pharmacology , Ubiquitin-Protein Ligases/antagonists & inhibitors , Ubiquitin-Protein Ligases/metabolism , Ubiquitination
11.
Traffic ; 20(6): 448-459, 2019 06.
Article in English | MEDLINE | ID: mdl-30989771

ABSTRACT

Kidney proximal tubule (PT) cells have high-metabolic demands to drive the extraordinary ion and solute transport, water reabsorption, and endocytic uptake that occur in this nephron segment. Increases in renal blood flow alter glomerular filtration rate and lead to rapid mechanosensitive adaptations in PT transport, impacting metabolic demand. Although the PT reabsorbs essentially all of the filtered glucose, PT cells rely primarily on oxidative metabolism rather than glycolysis to meet their energy demands. We lack an understanding of how PT functions are impacted by changes in O2 availability via cortical capillaries and mechanosensitive signaling in response to alterations in luminal flow. Previously, we found that opossum kidney (OK) cells recapitulate key features of PT cells in vivo, including enhanced endocytic uptake and ion transport, when exposed to mechanical stimulation by culture on an orbital shaker. We hypothesized that increased oxygenation resulting from orbital shaking also contributes to this more physiologic phenotype. RNA seq of OK cells maintained under static conditions or exposed to orbital shaking for up to 96 hours showed significant time- and culture-dependent changes in gene expression. Transcriptional and metabolomics data were consistent with a decrease in glycolytic flux and with an increased utilization of aerobic metabolic pathways in cells exposed to orbital shaking. Moreover, we found spatial differences in the pattern of mitogenesis vs development of ion transport and endocytic capacities in our culture system that highlight the complexity of O2 -dependent and mechanosensitive crosstalk to regulate PT cell function.


Subject(s)
Endocytosis , Epithelial Cells/metabolism , Kidney Tubules, Proximal/cytology , Oxygen/metabolism , Stress, Mechanical , Transcriptome , Animals , Cell Culture Techniques/standards , Cell Line , Glycolysis , Kidney Tubules, Proximal/metabolism , Metabolome , Monodelphis
12.
J Biol Chem ; 295(13): 4171-4180, 2020 03 27.
Article in English | MEDLINE | ID: mdl-32071084

ABSTRACT

Systemic scleroderma (SSc) is an autoimmune disease that affects over 2.5 million people globally. SSc results in dysfunctional connective tissues with excessive profibrotic signaling, affecting skin, cardiovascular, and particularly lung tissue. Over three-quarters of individuals with SSc develop pulmonary fibrosis within 5 years, the main cause of SSc mortality. No approved medicines to manage lung SSc currently exist. Recent research suggests that profibrotic signaling by transforming growth factor ß (TGF-ß) is directly tied to SSc. Previous studies have also shown that ubiquitin E3 ligases potently control TGF-ß signaling through targeted degradation of key regulatory proteins; however, the roles of these ligases in SSc-TGF-ß signaling remain unclear. Here we utilized primary SSc patient lung cells for high-throughput screening of TGF-ß signaling via high-content imaging of nuclear translocation of the profibrotic transcription factor SMAD family member 2/3 (SMAD2/3). We screened an RNAi library targeting ubiquitin E3 ligases and observed that knockdown of the E3 ligase Kelch-like protein 42 (KLHL42) impairs TGF-ß-dependent profibrotic signaling. KLHL42 knockdown reduced fibrotic tissue production and decreased TGF-ß-mediated SMAD activation. Using unbiased ubiquitin proteomics, we identified phosphatase 2 regulatory subunit B'ϵ (PPP2R5ϵ) as a KLHL42 substrate. Mechanistic experiments validated ubiquitin-mediated control of PPP2R5ϵ stability through KLHL42. PPP2R5ϵ knockdown exacerbated TGF-ß-mediated profibrotic signaling, indicating a role of PPP2R5ϵ in SSc. Our findings indicate that the KLHL42-PPP2R5ϵ axis controls profibrotic signaling in SSc lung fibroblasts. We propose that future studies could investigate whether chemical inhibition of KLHL42 may ameliorate profibrotic signaling in SSc.


Subject(s)
Protein Phosphatase 2/genetics , Scleroderma, Systemic/genetics , Smad2 Protein/genetics , Transforming Growth Factor beta/genetics , Ubiquitin-Protein Ligases/genetics , Fibroblasts/metabolism , Fibrosis/genetics , Fibrosis/pathology , Humans , Lung/cytology , Lung/metabolism , Proteolysis , Proteomics , Scleroderma, Systemic/pathology , Signal Transduction/genetics
13.
J Immunol ; 203(3): 658-664, 2019 08 01.
Article in English | MEDLINE | ID: mdl-31201238

ABSTRACT

Adipose regulatory T cells (aTregs) have emerged as critical cells for the control of local and systemic inflammation. In this study, we show a distinctive role for the transcriptional regulator Id2 in the differentiation, survival, and function of aTregs in mice. Id2 was highly expressed in aTregs compared with high Id3 expression in lymphoid regulatory T cells (Tregs). Treg-specific deletion of Id2 resulted in a substantial decrease in aTregs, whereas Tregs in the spleen and lymph nodes were unaffected. Additionally, loss of Id2 resulted in decreased expression of aTreg-associated markers, including ST2, CCR2, KLRG1, and GATA3. Gene expression analysis revealed that Id2 expression was essential for the survival of aTregs, and loss of Id2 increased cell death in aTregs due to increased Fas expression. Id2-mediated aTreg depletion resulted in increased systemic inflammation, increased inflammatory macrophages and CD8+ effector T cells, and loss of glucose tolerance under standard diet conditions. Thus, we reveal an unexpected and novel function for Id2 in mediating differentiation, survival, and function of aTregs that when lost result in increased metabolic perturbation.


Subject(s)
Adipose Tissue/cytology , Inhibitor of Differentiation Protein 2/genetics , Inhibitor of Differentiation Protein 2/metabolism , T-Lymphocytes, Regulatory/cytology , T-Lymphocytes, Regulatory/metabolism , Animals , CD4 Lymphocyte Count , CD8-Positive T-Lymphocytes/immunology , Cell Death/genetics , Cell Differentiation/genetics , Cell Survival/genetics , GATA3 Transcription Factor/metabolism , Inflammation/immunology , Inhibitor of Differentiation Proteins/metabolism , Interleukin-1 Receptor-Like 1 Protein/metabolism , Lectins, C-Type/metabolism , Macrophages/immunology , Male , Mice , Mice, Inbred C57BL , Receptors, CCR2/metabolism , Receptors, Immunologic/metabolism , T-Lymphocytes, Regulatory/immunology , fas Receptor/metabolism
14.
Nature ; 517(7534): 391-5, 2015 Jan 15.
Article in English | MEDLINE | ID: mdl-25409143

ABSTRACT

Obesity-linked insulin resistance is a major precursor to the development of type 2 diabetes. Previous work has shown that phosphorylation of PPARγ (peroxisome proliferator-activated receptor γ) at serine 273 by cyclin-dependent kinase 5 (Cdk5) stimulates diabetogenic gene expression in adipose tissues. Inhibition of this modification is a key therapeutic mechanism for anti-diabetic drugs that bind PPARγ, such as the thiazolidinediones and PPARγ partial agonists or non-agonists. For a better understanding of the importance of this obesity-linked PPARγ phosphorylation, we created mice that ablated Cdk5 specifically in adipose tissues. These mice have both a paradoxical increase in PPARγ phosphorylation at serine 273 and worsened insulin resistance. Unbiased proteomic studies show that extracellular signal-regulated kinase (ERK) kinases are activated in these knockout animals. Here we show that ERK directly phosphorylates serine 273 of PPARγ in a robust manner and that Cdk5 suppresses ERKs through direct action on a novel site in MAP kinase/ERK kinase (MEK). Importantly, pharmacological inhibition of MEK and ERK markedly improves insulin resistance in both obese wild-type and ob/ob mice, and also completely reverses the deleterious effects of the Cdk5 ablation. These data show that an ERK/Cdk5 axis controls PPARγ function and suggest that MEK/ERK inhibitors may hold promise for the treatment of type 2 diabetes.


Subject(s)
Cyclin-Dependent Kinase 5/metabolism , Diabetes Mellitus/metabolism , Extracellular Signal-Regulated MAP Kinases/metabolism , PPAR gamma/metabolism , Adipocytes/enzymology , Adipocytes/metabolism , Adipose Tissue/cytology , Adipose Tissue/enzymology , Adipose Tissue/metabolism , Animals , Cell Proliferation , Cells, Cultured , Cyclin-Dependent Kinase 5/deficiency , Diet, High-Fat , Humans , Insulin Resistance , MAP Kinase Kinase 2/antagonists & inhibitors , MAP Kinase Kinase 2/metabolism , MAP Kinase Signaling System , Male , Mice , Mice, Inbred C57BL , Mice, Obese , PPAR gamma/chemistry , Phosphorylation
15.
FASEB J ; 33(7): 8174-8185, 2019 07.
Article in English | MEDLINE | ID: mdl-30922125

ABSTRACT

The connection between adipose glucocorticoid action and whole-body metabolism is incompletely understood. Thus, we generated adipose tissue-specific glucocorticoid receptor-knockout (Ad-GcR-/-) mice to explore potential mechanisms. Ad-GcR-/- mice had a lower concentration of fasting plasma nonesterified fatty acids and less hepatic steatosis. This was associated with increased protein kinase B phosphorylation and increased hepatic glycogen synthesis after an oral glucose challenge. High-fat diet (HFD)-fed Ad-GcR-/- mice were protected against the development of hepatic steatosis and diacylglycerol-PKCε-induced impairments in hepatic insulin signaling. Under hyperinsulinemic-euglycemic conditions, hepatic insulin response was ∼10-fold higher in HFD-fed Ad-GcR-/- mice. Insulin-mediated suppression of adipose lipolysis was improved by 40% in Ad-GcR-/- mice. Adipose triglyceride lipase expression was decreased and insulin-mediated perilipin dephosphorylation was increased in Ad-GcR-/- mice. In metabolic cages, food intake decreased by 3 kcal/kg per hour in Ad-GcR-/- mice. Therefore, physiologic adipose glucocorticoid action appears to drive hepatic lipid accumulation during stressors such as fasting. The resultant hepatic insulin resistance prevents hepatic glycogen synthesis, preserving glucose for glucose-dependent organs. Absence of adipose glucocorticoid action attenuates HFD-induced hepatic insulin resistance; potential explanations for reduction in hepatic steatosis include reductions in adipose lipolysis and food intake.-Abulizi, A., Camporez, J.-P., Jurczak, M. J., Høyer, K. F., Zhang, D., Cline, G. W., Samuel, V. T., Shulman, G. I., Vatner, D. F. Adipose glucocorticoid action influences whole-body metabolism via modulation of hepatic insulin action.


Subject(s)
Adipose Tissue/metabolism , Glucocorticoids/metabolism , Insulin Resistance , Insulin/metabolism , Lipolysis , Liver/metabolism , Animals , Dietary Fats/adverse effects , Dietary Fats/pharmacology , Glucocorticoids/genetics , Insulin/genetics , Metabolism, Inborn Errors/genetics , Metabolism, Inborn Errors/metabolism , Mice , Mice, Knockout , Receptors, Glucocorticoid/deficiency , Receptors, Glucocorticoid/genetics , Receptors, Glucocorticoid/metabolism
16.
Nature ; 510(7506): 542-6, 2014 Jun 26.
Article in English | MEDLINE | ID: mdl-24847880

ABSTRACT

Metformin is considered to be one of the most effective therapeutics for treating type 2 diabetes because it specifically reduces hepatic gluconeogenesis without increasing insulin secretion, inducing weight gain or posing a risk of hypoglycaemia. For over half a century, this agent has been prescribed to patients with type 2 diabetes worldwide, yet the underlying mechanism by which metformin inhibits hepatic gluconeogenesis remains unknown. Here we show that metformin non-competitively inhibits the redox shuttle enzyme mitochondrial glycerophosphate dehydrogenase, resulting in an altered hepatocellular redox state, reduced conversion of lactate and glycerol to glucose, and decreased hepatic gluconeogenesis. Acute and chronic low-dose metformin treatment effectively reduced endogenous glucose production, while increasing cytosolic redox and decreasing mitochondrial redox states. Antisense oligonucleotide knockdown of hepatic mitochondrial glycerophosphate dehydrogenase in rats resulted in a phenotype akin to chronic metformin treatment, and abrogated metformin-mediated increases in cytosolic redox state, decreases in plasma glucose concentrations, and inhibition of endogenous glucose production. These findings were replicated in whole-body mitochondrial glycerophosphate dehydrogenase knockout mice. These results have significant implications for understanding the mechanism of metformin's blood glucose lowering effects and provide a new therapeutic target for type 2 diabetes.


Subject(s)
Gluconeogenesis/drug effects , Glycerolphosphate Dehydrogenase/antagonists & inhibitors , Metformin/pharmacology , Mitochondria/enzymology , Animals , Blood Glucose/analysis , Blood Glucose/biosynthesis , Cells, Cultured , Diabetes Mellitus, Type 2/drug therapy , Diabetes Mellitus, Type 2/enzymology , Diabetes Mellitus, Type 2/metabolism , Glycerolphosphate Dehydrogenase/deficiency , Glycerolphosphate Dehydrogenase/genetics , Glycerolphosphate Dehydrogenase/metabolism , Humans , Hypoglycemic Agents/pharmacology , Insulin/metabolism , Insulin Secretion , Lactic Acid/metabolism , Liver/drug effects , Liver/metabolism , Male , Mice, Knockout , Oxidation-Reduction/drug effects , Rats , Rats, Sprague-Dawley
17.
Mol Cell ; 48(6): 900-13, 2012 Dec 28.
Article in English | MEDLINE | ID: mdl-23142079

ABSTRACT

Hepatic glucose production (HGP) maintains blood glucose levels during fasting but can also exacerbate diabetic hyperglycemia. HGP is dynamically controlled by a signaling/transcriptional network that regulates the expression/activity of gluconeogenic enzymes. A key mediator of gluconeogenic gene transcription is PGC-1α. PGC-1α's activation of gluconeogenic gene expression is dependent upon its acetylation state, which is controlled by the acetyltransferase GCN5 and the deacetylase Sirt1. Nevertheless, whether other chromatin modifiers-particularly other sirtuins-can modulate PGC-1α acetylation is currently unknown. Herein, we report that Sirt6 strongly controls PGC-1α acetylation. Surprisingly, Sirt6 induces PGC-1α acetylation and suppresses HGP. Sirt6 depletion decreases PGC-1α acetylation and promotes HGP. These acetylation effects are GCN5 dependent: Sirt6 interacts with and modifies GCN5, enhancing GCN5's activity. Lepr(db/db) mice, an obese/diabetic animal model, exhibit reduced Sirt6 levels; ectopic re-expression suppresses gluconeogenic genes and normalizes glycemia. Activation of hepatic Sirt6 may therefore be therapeutically useful for treating insulin-resistant diabetes.


Subject(s)
Gluconeogenesis , Hepatocytes/metabolism , Sirtuins/physiology , Trans-Activators/metabolism , p300-CBP Transcription Factors/metabolism , Acetylation , Animals , Blood Glucose , Cell Line , Enzyme Activation , Gene Expression , Gluconeogenesis/genetics , Hepatocytes/enzymology , Humans , Liver/enzymology , Liver/metabolism , Liver/pathology , Male , Mice , Mice, Inbred BALB C , Mice, Obese , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha , Phosphorylation , Protein Processing, Post-Translational , Sirtuin 1/metabolism , Sirtuins/genetics , Sirtuins/metabolism , Transcription Factors
19.
J Mol Cell Cardiol ; 129: 174-178, 2019 04.
Article in English | MEDLINE | ID: mdl-30822408

ABSTRACT

Exposure to a high fat (HF) diet promotes increased fatty acid uptake, fatty acid oxidation and lipid accumulation in the heart. These maladaptive changes impact cellular energy metabolism and may promote the development of cardiac dysfunction. Attempts to increase cardiac glucose utilization have been proposed as a way to reverse cardiomyopathy in obese and diabetic individuals. Adropin is a nutrient-regulated metabolic hormone shown to promote glucose oxidation over fatty acid oxidation in skeletal muscle homogenates in vitro. The focus of the current study was to investigate whether adropin can regulate substrate metabolism in the heart following prolonged exposure to a HF diet in vivo. Mice on a long-term HF diet received serial intraperitoneal injections of vehicle or adropin over three days. Cardiac glucose oxidation was significantly reduced in HF animals, which was rescued by acute adropin treatment. Significant decreases in cardiac pyruvate dehydrogenase activity were observed in HF animals, which were also reversed by adropin treatment. In contrast to previous studies, this change was unrelated to Pdk4 expression, which remained elevated in both vehicle- and adropin-treated HF mice. Instead, we show that adropin modulated the expression of the mitochondrial acetyltransferase enzyme GCN5L1, which altered the acetylation status and activity of fuel metabolism enzymes to favor glucose utilization. Our findings indicate that adropin exposure leads to increased cardiac glucose oxidation under HF conditions, and may provide a future therapeutic avenue in the treatment of diabetic cardiomyopathy.


Subject(s)
Glucose/metabolism , Intercellular Signaling Peptides and Proteins/pharmacology , Myocardium/metabolism , Prediabetic State/metabolism , Acetylation/drug effects , Animals , Mice, Obese , Oxidation-Reduction/drug effects , Pyruvate Dehydrogenase Acetyl-Transferring Kinase/metabolism
20.
J Physiol ; 597(15): 3885-3903, 2019 08.
Article in English | MEDLINE | ID: mdl-31206703

ABSTRACT

KEY POINTS: Oestrogen has been shown to play an important role in the regulation of metabolic homeostasis and insulin sensitivity in both human and rodent studies. Insulin sensitivity is greater in premenopausal women compared with age-matched men, and metabolism-related cardiovascular diseases and type 2 diabetes are less frequent in these same women. Both female and male mice treated with oestradiol are protected against obesity-induced insulin resistance. The protection against obesity-induced insulin resistance is associated with reduced ectopic lipid content in liver and skeletal muscle. These results were associated with increased insulin-stimulated suppression of white adipose tissue lipolysis and reduced inflammation. ABSTRACT: Oestrogen has been shown to play an important role in the regulation of metabolic homeostasis and insulin sensitivity in both human and rodent studies. Overall, females are protected against obesity-induced insulin resistance; yet, the mechanisms responsible for this protection are not well understood. Therefore, the aim of the present work was to evaluate the underlying mechanism(s) by which female mice are protected against obesity-induced insulin resistance compared with male mice. We studied male and female mice in age-matched or body weight-matched conditions. They were fed a high-fat diet (HFD) or regular chow for 4 weeks. We also studied HFD male mice treated with oestradiol or vehicle. Both HFD female and HFD male mice treated with oestradiol displayed increased whole-body insulin sensitivity, associated with reduction in ectopic hepatic and muscle lipid content compared to HFD male mice. Reductions in ectopic lipid content in these mice were associated with increased insulin-stimulated suppression of white adipose tissue (WAT) lipolysis. Both HFD female and HFD male mice treated with oestradiol also displayed striking reductions in WAT inflammation, represented by reductions in plasma and adipose tissue tumour necrosis factor α and interleukin 6 concentrations. Taken together these data support the hypothesis that HFD female mice are protected from obesity-induced insulin resistance due to oestradiol-mediated reductions in WAT inflammation, leading to improved insulin-mediated suppression of WAT lipolysis and reduced ectopic lipid content in liver and skeletal muscle.


Subject(s)
Estrogens/pharmacology , Insulin Resistance , Interleukin-6/metabolism , Sex Characteristics , Adipose Tissue, White/drug effects , Adipose Tissue, White/metabolism , Animals , Body Weight , Cell Line , Cells, Cultured , Diet, High-Fat/adverse effects , Estrogens/metabolism , Female , Lipolysis , Liver/drug effects , Liver/metabolism , Male , Mice , Mice, Inbred C57BL , Muscle, Skeletal/drug effects , Muscle, Skeletal/metabolism , Tumor Necrosis Factor-alpha/metabolism
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