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1.
Gut ; 71(4): 807-821, 2022 04.
Article in English | MEDLINE | ID: mdl-33903148

ABSTRACT

OBJECTIVE: We evaluated the influence of sex on the pathophysiology of non-alcoholic fatty liver disease (NAFLD). We investigated diet-induced phenotypic responses to define sex-specific regulation between healthy liver and NAFLD to identify influential pathways in different preclinical murine models and their relevance in humans. DESIGN: Different models of diet-induced NAFLD (high-fat diet, choline-deficient high-fat diet, Western diet or Western diet supplemented with fructose and glucose in drinking water) were compared with a control diet in male and female mice. We performed metabolic phenotyping, including plasma biochemistry and liver histology, untargeted large-scale approaches (liver metabolome, lipidome and transcriptome), gene expression profiling and network analysis to identify sex-specific pathways in the mouse liver. RESULTS: The different diets induced sex-specific responses that illustrated an increased susceptibility to NAFLD in male mice. The most severe lipid accumulation and inflammation/fibrosis occurred in males receiving the high-fat diet and Western diet, respectively. Sex-biased hepatic gene signatures were identified for these different dietary challenges. The peroxisome proliferator-activated receptor α (PPARα) co-expression network was identified as sexually dimorphic, and in vivo experiments in mice demonstrated that hepatocyte PPARα determines a sex-specific response to fasting and treatment with pemafibrate, a selective PPARα agonist. Liver molecular signatures in humans also provided evidence of sexually dimorphic gene expression profiles and the sex-specific co-expression network for PPARα. CONCLUSIONS: These findings underscore the sex specificity of NAFLD pathophysiology in preclinical studies and identify PPARα as a pivotal, sexually dimorphic, pharmacological target. TRIAL REGISTRATION NUMBER: NCT02390232.


Subject(s)
Non-alcoholic Fatty Liver Disease , Animals , Diet, High-Fat/adverse effects , Disease Models, Animal , Female , Humans , Lipid Metabolism , Liver/metabolism , Male , Mice , Mice, Inbred C57BL , Non-alcoholic Fatty Liver Disease/metabolism , PPAR alpha/metabolism
2.
Diabetologia ; 63(3): 453-461, 2020 03.
Article in English | MEDLINE | ID: mdl-31754750

ABSTRACT

Gender and biological sex impact the pathogenesis of numerous diseases, including metabolic disorders such as diabetes. In most parts of the world, diabetes is more prevalent in men than in women, especially in middle-aged populations. In line with this, considering almost all animal models, males are more likely to develop obesity, insulin resistance and hyperglycaemia than females in response to nutritional challenges. As summarised in this review, it is now obvious that many aspects of energy balance and glucose metabolism are regulated differently in males and females and influence their predisposition to type 2 diabetes. During their reproductive life, women exhibit specificities in energy partitioning as compared with men, with carbohydrate and lipid utilisation as fuel sources that favour energy storage in subcutaneous adipose tissues and preserve them from visceral and ectopic fat accumulation. Insulin sensitivity is higher in women, who are also characterised by higher capacities for insulin secretion and incretin responses than men; although, these sex advantages all disappear when glucose tolerance deteriorates towards diabetes. Clinical and experimental observations evidence the protective actions of endogenous oestrogens, mainly through oestrogen receptor α activation in various tissues, including the brain, the liver, skeletal muscle, adipose tissue and pancreatic beta cells. However, beside sex steroids, underlying mechanisms need to be further investigated, especially the role of sex chromosomes, fetal/neonatal programming and epigenetic modifications. On the path to precision medicine, further deciphering sex-specific traits in energy balance and glucose homeostasis is indeed a priority topic to optimise individual approaches in type 2 diabetes prevention and treatment.


Subject(s)
Diabetes Mellitus, Type 2/etiology , Energy Metabolism/physiology , Sex Characteristics , Animals , Diabetes Mellitus, Type 2/epidemiology , Diabetes Mellitus, Type 2/metabolism , Disease Susceptibility , Embryonic Development/physiology , Female , Humans , Infant, Newborn , Male , Middle Aged , Pregnancy , Risk Factors
3.
J Hepatol ; 70(5): 963-973, 2019 05.
Article in English | MEDLINE | ID: mdl-30677458

ABSTRACT

BACKGROUND & AIMS: Although the role of inflammation to combat infection is known, the contribution of metabolic changes in response to sepsis is poorly understood. Sepsis induces the release of lipid mediators, many of which activate nuclear receptors such as the peroxisome proliferator-activated receptor (PPAR)α, which controls both lipid metabolism and inflammation. We aimed to elucidate the previously unknown role of hepatic PPARα in the response to sepsis. METHODS: Sepsis was induced by intraperitoneal injection of Escherichia coli in different models of cell-specific Ppara-deficiency and their controls. The systemic and hepatic metabolic response was analyzed using biochemical, transcriptomic and functional assays. PPARα expression was analyzed in livers from elective surgery and critically ill patients and correlated with hepatic gene expression and blood parameters. RESULTS: Both whole body and non-hematopoietic Ppara-deficiency in mice decreased survival upon bacterial infection. Livers of septic Ppara-deficient mice displayed an impaired metabolic shift from glucose to lipid utilization resulting in more severe hypoglycemia, impaired induction of hyperketonemia and increased steatosis due to lower expression of genes involved in fatty acid catabolism and ketogenesis. Hepatocyte-specific deletion of PPARα impaired the metabolic response to sepsis and was sufficient to decrease survival upon bacterial infection. Hepatic PPARA expression was lower in critically ill patients and correlated positively with expression of lipid metabolism genes, but not with systemic inflammatory markers. CONCLUSION: During sepsis, Ppara-deficiency in hepatocytes is deleterious as it impairs the adaptive metabolic shift from glucose to FA utilization. Metabolic control by PPARα in hepatocytes plays a key role in the host defense against infection. LAY SUMMARY: As the main cause of death in critically ill patients, sepsis remains a major health issue lacking efficacious therapies. While current clinical literature suggests an important role for inflammation, metabolic aspects of sepsis have mostly been overlooked. Here, we show that mice with an impaired metabolic response, due to deficiency of the nuclear receptor PPARα in the liver, exhibit enhanced mortality upon bacterial infection despite a similar inflammatory response, suggesting that metabolic interventions may be a viable strategy for improving sepsis outcomes.


Subject(s)
Adaptation, Physiological , Liver/metabolism , PPAR alpha/physiology , Sepsis/metabolism , Animals , Bacterial Infections/metabolism , Fatty Acids/metabolism , Glucose/metabolism , Humans , Inflammation/etiology , Mice , Mice, Inbred C57BL
4.
Arch Toxicol ; 93(2): 505-517, 2019 02.
Article in English | MEDLINE | ID: mdl-30448865

ABSTRACT

Fumonisin B1 (FB1), a congener of fumonisins produced by Fusarium species, is the most abundant and most toxicologically active fumonisin. FB1 causes severe mycotoxicosis in animals, including nephrotoxicity, hepatotoxicity, and disruption of the intestinal barrier. However, mechanisms associated with FB1 toxicity are still unclear. Preliminary studies have highlighted the role of liver X receptors (LXRs) during FB1 exposure. LXRs belong to the nuclear receptor family and control the expression of genes involved in cholesterol and lipid homeostasis. In this context, the toxicity of FB1 was compared in female wild-type (LXR+/+) and LXRα,ß double knockout (LXR-/-) mice in the absence or presence of FB1 (10 mg/kg body weight/day) for 28 days. Exposure to FB1 supplemented in the mice's drinking water resulted in more pronounced hepatotoxicity in LXR-/- mice compared to LXR+/+ mice, as indicated by hepatic transaminase levels (ALT, AST) and hepatic inflammatory and fibrotic lesions. Next, the effect of FB1 exposure on the liver transcriptome was investigated. FB1 exposure led to a specific transcriptional response in LXR-/- mice that included altered cholesterol and bile acid homeostasis. ELISA showed that these effects were associated with an elevated FB1 concentration in the plasma of LXR-/- mice, suggesting that LXRs participate in intestinal absorption and/or clearance of the toxin. In summary, this study demonstrates an important role of LXRs in protecting the liver against FB1-induced toxicity, suggesting an alternative mechanism not related to the inhibition of sphingolipid synthesis for mycotoxin toxicity.


Subject(s)
Chemical and Drug Induced Liver Injury/metabolism , Fumonisins/toxicity , Liver X Receptors/metabolism , Alanine Transaminase/metabolism , Animals , Aspartate Aminotransferases/metabolism , Chemical and Drug Induced Liver Injury/etiology , Chemical and Drug Induced Liver Injury/pathology , Female , Fumonisins/blood , Gene Expression Regulation/drug effects , Liver/drug effects , Liver/physiology , Liver X Receptors/genetics , Mice, Inbred C57BL , Mice, Knockout , Sphingolipids/metabolism
5.
Am J Pathol ; 187(6): 1273-1287, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28502695

ABSTRACT

Estrogen receptor α (ERα) regulates gene transcription through two activation functions (ERα-AF1 and ERα-AF2). We recently found that the protection conferred by 17ß-estradiol against obesity and insulin resistance requires ERα-AF2 but not ERα-AF1. However, the interplay between the two ERα-AFs is poorly understood in vivo and the metabolic influence of a specific ERα-AF1 action remains to be explored. To this end, wild-type, ERα-deficient, or ERα-AF1-deficient ovariectomized female mice were fed a high-fat diet and concomitantly administered with vehicle or tamoxifen, a selective ER modulator that acts as a ERα-AF1 agonist/ERα-AF2 antagonist. In ovariectomized wild-type mice, tamoxifen significantly reduced food intake and totally prevented adiposity, insulin resistance, and steatosis. These effects were abolished in ERα-deficient and ERα-AF1-deficient mice, revealing the specific role of ERα-AF1 activation. Finally, hepatic gene expression changes elicited by tamoxifen in wild-type mice were abrogated in ERα-AF1-deficient mice. The combination of pharmacologic and transgenic approaches thus indicates that selective ERα-AF1 activation by tamoxifen is sufficient to elicit metabolic protection, contrasting with the specific requirement of ERα-AF2 in the metabolic actions of 17ß-estradiol. This redundancy in the ability of the two ERα-AFs to separately mediate metabolic prevention strikingly contrasts with the contribution of both ERα-AFs in breast cancer proliferation, shedding new light on the therapeutic potential of selective ER modulation.


Subject(s)
Estrogen Receptor alpha/physiology , Fatty Liver/prevention & control , Insulin Resistance/physiology , Obesity/prevention & control , Selective Estrogen Receptor Modulators/therapeutic use , Animals , Diet, High-Fat , Drug Evaluation, Preclinical/methods , Estrogen Receptor alpha/antagonists & inhibitors , Estrogen Receptor alpha/deficiency , Estrogen Receptor alpha/genetics , Fatty Liver/etiology , Fatty Liver/metabolism , Fatty Liver/pathology , Female , Gene Expression Regulation/drug effects , Liver/metabolism , Mice, Inbred C57BL , Mice, Knockout , Obesity/etiology , Obesity/metabolism , Ovariectomy , Selective Estrogen Receptor Modulators/pharmacology , Tamoxifen/pharmacology , Tamoxifen/therapeutic use , Weight Gain/drug effects
6.
Int J Mol Sci ; 19(7)2018 06 27.
Article in English | MEDLINE | ID: mdl-29954129

ABSTRACT

Non-alcoholic fatty liver disease (NAFLD) is a major health issue in developed countries. Although usually associated with obesity, NAFLD is also diagnosed in individuals with low body mass index (BMI) values, especially in Asia. NAFLD can progress from steatosis to non-alcoholic steatohepatitis (NASH), which is characterized by liver damage and inflammation, leading to cirrhosis and hepatocellular carcinoma (HCC). NAFLD development can be induced by lipid metabolism alterations; imbalances of pro- and anti-inflammatory molecules; and changes in various other factors, such as gut nutrient-derived signals and adipokines. Obesity-related metabolic disorders may be improved by activation of the nuclear receptor peroxisome proliferator-activated receptor (PPAR)ß/δ, which is involved in metabolic processes and other functions. This review is focused on research findings related to PPARß/δ-mediated regulation of hepatic lipid and glucose metabolism and NAFLD development. It also discusses the potential use of pharmacological PPARß/δ activation for NAFLD treatment.


Subject(s)
Carcinoma, Hepatocellular/drug therapy , Carcinoma, Hepatocellular/metabolism , Non-alcoholic Fatty Liver Disease/drug therapy , Non-alcoholic Fatty Liver Disease/metabolism , PPAR delta/metabolism , PPAR-beta/metabolism , Animals , Humans , Liver Neoplasms/drug therapy , Liver Neoplasms/metabolism , PPAR delta/therapeutic use , PPAR-beta/therapeutic use
7.
Adv Exp Med Biol ; 1043: 401-426, 2017.
Article in English | MEDLINE | ID: mdl-29224105

ABSTRACT

Estrogen receptor alpha (ERα) has been demonstrated to play a key role in reproduction but also to exert numerous functions in nonreproductive tissues. Accordingly, ERα is now recognized as a key regulator of energy homeostasis and glucose metabolism and mediates the protective effects of estrogens against obesity and type 2 diabetes. This chapter attempts to summarize our current understanding of the mechanisms of ERα activation and their involvement in the modulation of energy balance and glucose metabolism. We first focus on the experimental studies that constitute the basis of the understanding of ERα as a nuclear receptor and more specifically on the key roles played by its two activation functions (AFs). We depict the consequences of the selective inactivation of these AFs in mouse models, which further underline the prominent role of nuclear ERα in the prevention of obesity and diabetes, as on the reproductive tract and the vascular system. Besides these nuclear actions, a fraction of ERα is associated with the plasma membrane and activates nonnuclear signaling from this site. Such rapid effects, called membrane-initiated steroid signals (MISS), have been characterized in a variety of cell lines and in particular in endothelial cells. The development of selective pharmacological tools that specifically activate MISS as well as the generation of mice expressing an ERα protein impeded for membrane localization has just begun to unravel the physiological role of MISS in vivo and their contribution to ERα-mediated metabolic protection. Finally, we discuss novel perspectives for the design of tissue-selective ER modulators.


Subject(s)
Blood Glucose/metabolism , Cell Membrane/metabolism , Cell Nucleus/metabolism , Energy Metabolism , Estrogen Receptor alpha/metabolism , Estrogens/metabolism , Animals , Blood Glucose/drug effects , Cell Membrane/drug effects , Cell Nucleus/drug effects , Diabetes Mellitus/metabolism , Diabetes Mellitus/physiopathology , Diabetes Mellitus/prevention & control , Disease Models, Animal , Energy Metabolism/drug effects , Estrogen Receptor alpha/chemistry , Homeostasis , Humans , Obesity/metabolism , Obesity/physiopathology , Obesity/prevention & control , Protein Conformation , Selective Estrogen Receptor Modulators/pharmacology , Signal Transduction , Structure-Activity Relationship
8.
Gut ; 65(7): 1202-14, 2016 07.
Article in English | MEDLINE | ID: mdl-26838599

ABSTRACT

OBJECTIVE: Peroxisome proliferator-activated receptor α (PPARα) is a nuclear receptor expressed in tissues with high oxidative activity that plays a central role in metabolism. In this work, we investigated the effect of hepatocyte PPARα on non-alcoholic fatty liver disease (NAFLD). DESIGN: We constructed a novel hepatocyte-specific PPARα knockout (Pparα(hep-/-)) mouse model. Using this novel model, we performed transcriptomic analysis following fenofibrate treatment. Next, we investigated which physiological challenges impact on PPARα. Moreover, we measured the contribution of hepatocytic PPARα activity to whole-body metabolism and fibroblast growth factor 21 production during fasting. Finally, we determined the influence of hepatocyte-specific PPARα deficiency in different models of steatosis and during ageing. RESULTS: Hepatocyte PPARα deletion impaired fatty acid catabolism, resulting in hepatic lipid accumulation during fasting and in two preclinical models of steatosis. Fasting mice showed acute PPARα-dependent hepatocyte activity during early night, with correspondingly increased circulating free fatty acids, which could be further stimulated by adipocyte lipolysis. Fasting led to mild hypoglycaemia and hypothermia in Pparα(hep-/-) mice when compared with Pparα(-/-) mice implying a role of PPARα activity in non-hepatic tissues. In agreement with this observation, Pparα(-/-) mice became overweight during ageing while Pparα(hep-/-) remained lean. However, like Pparα(-/-) mice, Pparα(hep-/-) fed a standard diet developed hepatic steatosis in ageing. CONCLUSIONS: Altogether, these findings underscore the potential of hepatocyte PPARα as a drug target for NAFLD.


Subject(s)
Aging , Fatty Acids/metabolism , Fibroblast Growth Factors/genetics , Hepatocytes , Non-alcoholic Fatty Liver Disease/genetics , PPAR alpha/genetics , Adipocytes , Aging/physiology , Animals , Cytochrome P-450 Enzyme System/genetics , Cytochrome P450 Family 4/genetics , Disease Models, Animal , Fasting , Fenofibrate/pharmacology , Fibroblast Growth Factors/biosynthesis , Gene Expression/drug effects , Gene Expression Profiling , Homeostasis/genetics , Hypoglycemia/genetics , Hypolipidemic Agents/pharmacology , Hypothermia/genetics , Lipid Metabolism/genetics , Lipolysis/genetics , Male , Mice, Inbred C57BL , Mice, Knockout , Non-alcoholic Fatty Liver Disease/metabolism , Overweight/genetics , PPAR alpha/metabolism , RNA, Messenger/metabolism , Triglycerides/metabolism
9.
Toxicol Appl Pharmacol ; 303: 90-100, 2016 07 15.
Article in English | MEDLINE | ID: mdl-27180240

ABSTRACT

The Constitutive Androstane Receptor (CAR, NR1I3) has been newly described as a regulator of energy metabolism. A relevant number of studies using animal models of obesity suggest that CAR activation could be beneficial on the metabolic balance. However, this remains controversial and the underlying mechanisms are still unknown. This work aimed to investigate the effect of CAR activation on hepatic energy metabolism during physiological conditions, i.e. in mouse models not subjected to metabolic/nutritional stress. Gene expression profiling in the liver of CAR knockout and control mice on chow diet and treated with a CAR agonist highlighted CAR-mediated up-regulations of lipogenic genes, concomitant with neutral lipid accumulation. A strong CAR-mediated up-regulation of the patatin-like phospholipase domain-containing protein 3 (Pnpla3) was demonstrated. Pnpla3 is a gene whose polymorphism is associated with the pathogenesis of nonalcoholic fatty liver disease (NAFLD) development. This observation was confirmed in human hepatocytes treated with the antiepileptic drug and CAR activator, phenobarbital and in immortalized human hepatocytes treated with CITCO. Studying the molecular mechanisms controlling Pnpla3 gene expression, we demonstrated that CAR does not act by a direct regulation of Pnpla3 transcription or via the Liver X Receptor but may rather involve the transcription factor Carbohydrate Responsive Element-binding protein. These data provide new insights into the regulation by CAR of glycolytic and lipogenic genes and on pathogenesis of steatosis. This also raises the question concerning the impact of drugs and environmental contaminants in lipid-associated metabolic diseases.


Subject(s)
Fatty Liver/metabolism , Lipogenesis , Liver/metabolism , Receptors, Cytoplasmic and Nuclear , Animals , Basic Helix-Loop-Helix Leucine Zipper Transcription Factors , Cell Line , Cells, Cultured , Constitutive Androstane Receptor , Female , Gene Expression Regulation/drug effects , Hep G2 Cells , Hepatocytes/drug effects , Hepatocytes/metabolism , Humans , Lipase/genetics , Lipase/metabolism , Lipogenesis/drug effects , Liver/drug effects , Liver X Receptors/genetics , Liver X Receptors/metabolism , Male , Membrane Proteins/genetics , Membrane Proteins/metabolism , Mice, Inbred C57BL , Mice, Knockout , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Phenobarbital/pharmacology , Pyridines/pharmacology , RNA, Messenger/metabolism , Receptors, Cytoplasmic and Nuclear/agonists , Receptors, Cytoplasmic and Nuclear/genetics , Transcription Factors/genetics , Transcription Factors/metabolism
11.
Int J Mol Sci ; 17(10)2016 Sep 24.
Article in English | MEDLINE | ID: mdl-27669233

ABSTRACT

The liver plays a central role in the regulation of fatty acid metabolism, which is highly sensitive to transcriptional responses to nutrients and hormones. Transcription factors involved in this process include nuclear hormone receptors. One such receptor, PPARα, which is highly expressed in the liver and activated by a variety of fatty acids, is a critical regulator of hepatic fatty acid catabolism during fasting. The present study compared the influence of dietary fatty acids and fasting on hepatic PPARα-dependent responses. Pparα(-/-) male mice and their wild-type controls were fed diets containing different fatty acids for 10 weeks prior to being subjected to fasting or normal feeding. In line with the role of PPARα in sensing dietary fatty acids, changes in chronic dietary fat consumption influenced liver damage during fasting. The changes were particularly marked in mice fed diets lacking essential fatty acids. However, fasting, rather than specific dietary fatty acids, induced acute PPARα activity in the liver. Taken together, the data imply that the potent signalling involved in triggering PPARα activity during fasting does not rely on essential fatty acid-derived ligand.


Subject(s)
Dietary Fats , Liver/metabolism , PPAR alpha/genetics , Alanine Transaminase/blood , Animals , Aspartate Aminotransferases/blood , Body Weight , Cholesterol/blood , Cytochrome P-450 Enzyme System/genetics , Cytochrome P450 Family 4/genetics , Fasting , Fatty Liver/metabolism , Fatty Liver/pathology , Fibroblast Growth Factors/genetics , Liver/pathology , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , PPAR alpha/metabolism , RNA, Messenger/metabolism , Triglycerides/blood
12.
Proc Natl Acad Sci U S A ; 109(11): 4257-62, 2012 Mar 13.
Article in English | MEDLINE | ID: mdl-22371576

ABSTRACT

Noonan syndrome (NS), a genetic disease caused in half of cases by activating mutations of the tyrosine phosphatase SHP2 (PTPN11), is characterized by congenital cardiopathies, facial dysmorphic features, and short stature. How mutated SHP2 induces growth retardation remains poorly understood. We report here that early postnatal growth delay is associated with low levels of insulin-like growth factor 1 (IGF-1) in a mouse model of NS expressing the D61G mutant of SHP2. Conversely, inhibition of SHP2 expression in growth hormone (GH)-responsive cell lines results in increased IGF-1 release upon GH stimulation. SHP2-deficient cells display decreased ERK1/2 phosphorylation and rat sarcoma (RAS) activation in response to GH, whereas expression of NS-associated SHP2 mutants results in ERK1/2 hyperactivation in vitro and in vivo. RAS/ERK1/2 inhibition in SHP2-deficient cells correlates with impaired dephosphorylation of the adaptor Grb2-associated binder-1 (GAB1) on its RAS GTPase-activating protein (RASGAP) binding sites and is rescued by interfering with RASGAP recruitment or function. We demonstrate that inhibition of ERK1/2 activation results in an increase of IGF-1 levels in vitro and in vivo, which is associated with significant growth improvement in NS mice. In conclusion, NS-causing SHP2 mutants inhibit GH-induced IGF-1 release through RAS/ERK1/2 hyperactivation, a mechanism that could contribute to growth retardation. This finding suggests that, in addition to its previously shown beneficial effect on NS-linked cardiac and craniofacial defects, RAS/ERK1/2 modulation could also alleviate the short stature phenotype in NS caused by PTPN11 mutations.


Subject(s)
Extracellular Signal-Regulated MAP Kinases/metabolism , Growth Hormone/pharmacology , Insulin-Like Growth Factor I/metabolism , Mutation/genetics , Noonan Syndrome/enzymology , Protein Tyrosine Phosphatase, Non-Receptor Type 11/genetics , Adaptor Proteins, Signal Transducing , Animals , Animals, Newborn , Binding Sites , Biometry , Enzyme Activation/drug effects , Insulin-Like Growth Factor I/biosynthesis , Janus Kinase 2/metabolism , Mice , Mitogen-Activated Protein Kinase Kinases/antagonists & inhibitors , Mitogen-Activated Protein Kinase Kinases/metabolism , Noonan Syndrome/blood , Noonan Syndrome/genetics , Phosphatidylinositol 3-Kinases/metabolism , Phosphoproteins/metabolism , Phosphorylation/drug effects , Protein Tyrosine Phosphatase, Non-Receptor Type 11/metabolism , Proto-Oncogene Proteins c-akt/metabolism , Rats , STAT5 Transcription Factor/metabolism , ras Proteins/metabolism
14.
Cell Rep ; 43(8): 114577, 2024 Aug 02.
Article in English | MEDLINE | ID: mdl-39096490

ABSTRACT

Growth and differentiation factor 15 (GDF15) has recently emerged as a weight loss and insulin-sensitizing factor. Growing evidence also supports a role for GDF15 as a physiological, exercise-induced stress signal. Here, we tested whether GDF15 is required for the insulin-sensitizing effects of exercise in mice and humans. At baseline, both under a standard nutritional state and high-fat feeding, GDF15 knockout (KO) mice display normal glucose tolerance, systemic insulin sensitivity, maximal speed, and endurance running capacity when compared to wild-type littermates independent of sex. When submitted to a 4-week exercise training program, both lean and obese wild-type and GDF15 KO mice similarly improve their endurance running capacity, glucose tolerance, systemic insulin sensitivity, and peripheral glucose uptake. Insulin-sensitizing effects of exercise training were also unrelated to changes in plasma GDF15 in humans. In summary, we here show that GDF15 is dispensable for the insulin-sensitizing effects of chronic exercise.

15.
J Hepatol ; 58(5): 984-92, 2013 May.
Article in English | MEDLINE | ID: mdl-23333450

ABSTRACT

BACKGROUND & AIMS: Nutrients influence non-alcoholic fatty liver disease. Essential fatty acids deficiency promotes various syndromes, including hepatic steatosis, through increased de novo lipogenesis. The mechanisms underlying such increased lipogenic response remain unidentified. METHODS: We used wild type mice and mice lacking Liver X Receptors to perform a nutrigenomic study that aimed at examining the role of these transcription factors. RESULTS: We showed that, in the absence of Liver X Receptors, essential fatty acids deficiency does not promote steatosis. Consistent with this, Liver X Receptors are required for the elevated expression of genes involved in lipogenesis in response to essential fatty acids deficiency. CONCLUSIONS: This work identifies, for the first time, the central role of Liver X Receptors in steatosis induced by essential fatty acids deficiency.


Subject(s)
Fatty Acids, Essential/deficiency , Fatty Liver/physiopathology , Gene Expression/physiology , Lipogenesis/genetics , Lipogenesis/physiology , Orphan Nuclear Receptors/physiology , Animals , Cholesterol/metabolism , Deficiency Diseases/physiopathology , Dietary Fats/pharmacology , Disease Models, Animal , Female , Gene Expression/drug effects , Lipogenesis/drug effects , Liver/metabolism , Liver X Receptors , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Orphan Nuclear Receptors/deficiency , Orphan Nuclear Receptors/genetics , Transcription Factors/physiology , Triglycerides/metabolism , Up-Regulation/physiology
16.
Front Endocrinol (Lausanne) ; 14: 1215947, 2023.
Article in English | MEDLINE | ID: mdl-37529599

ABSTRACT

Background: Estrogen Receptor α (ERα) is a significant modulator of energy balance and lipid/glucose metabolisms. Beyond the classical nuclear actions of the receptor, rapid activation of intracellular signaling pathways is mediated by a sub-fraction of ERα localized to the plasma membrane, known as Membrane Initiated Steroid Signaling (MISS). However, whether membrane ERα is involved in the protective metabolic actions of endogenous estrogens in conditions of nutritional challenge, and thus contributes to sex differences in the susceptibility to metabolic diseases, remains to be clarified. Methods: Male and female C451A-ERα mice, harboring a point mutation which results in the abolition of membrane localization and MISS-related effects of the receptor, and their wild-type littermates (WT-ERα) were maintained on a normal chow diet (NCD) or fed a high-fat diet (HFD). Body weight gain, body composition and glucose tolerance were monitored. Insulin sensitivity and energy balance regulation were further investigated in HFD-fed female mice. Results: C451A-ERα genotype had no influence on body weight gain, adipose tissue accumulation and glucose tolerance in NCD-fed mice of both sexes followed up to 7 months of age, nor male mice fed a HFD for 12 weeks. In contrast, compared to WT-ERα littermates, HFD-fed C451A-ERα female mice exhibited: 1) accelerated fat mass accumulation, liver steatosis and impaired glucose tolerance; 2) whole-body insulin resistance, assessed by hyperinsulinemic-euglycemic clamps, and altered insulin-induced signaling in skeletal muscle and liver; 3) significant decrease in energy expenditure associated with histological and functional abnormalities of brown adipose tissue and a defect in thermogenesis regulation in response to cold exposure. Conclusion: Besides the well-characterized role of ERα nuclear actions, membrane-initiated ERα extra-nuclear signaling contributes to female, but not to male, protection against HFD-induced obesity and associated metabolic disorders in mouse.


Subject(s)
Insulin Resistance , Noncommunicable Diseases , Female , Male , Mice , Animals , Diet, High-Fat/adverse effects , Estrogen Receptor alpha/metabolism , Receptors, Estrogen , Insulin Resistance/physiology , Obesity/genetics , Obesity/metabolism , Insulin/metabolism , Weight Gain , Glucose/metabolism , Adipose Tissue, Brown/metabolism
17.
Nat Commun ; 14(1): 5329, 2023 09 01.
Article in English | MEDLINE | ID: mdl-37658064

ABSTRACT

Dietary lipids can affect metabolic health through gut microbiota-mediated mechanisms, but the influence of lipid-microbiota interaction on liver steatosis is largely unknown. We investigate the impact of dietary lipids on human gut microbiota composition and the effects of microbiota-lipid interactions on steatosis in male mice. In humans, low intake of saturated fatty acids (SFA) is associated with increased microbial diversity independent of fiber intake. In mice, poorly absorbed dietary long-chain SFA, particularly stearic acid, induce a shift in bile acid profile and improved metabolism and steatosis. These benefits are dependent on the gut microbiota, as they are transmitted by microbial transfer. Diets enriched in polyunsaturated fatty acids are protective against steatosis but have minor influence on the microbiota. In summary, we find that diets enriched in poorly absorbed long-chain SFA modulate gut microbiota profiles independent of fiber intake, and this interaction is relevant to improve metabolism and decrease liver steatosis.


Subject(s)
Fatty Liver , Gastrointestinal Microbiome , Microbiota , Humans , Male , Animals , Mice , Fatty Acids , Bile Acids and Salts , Dietary Fats
18.
Elife ; 122023 01 17.
Article in English | MEDLINE | ID: mdl-36649053

ABSTRACT

The rod-shaped adult cardiomyocyte (CM) harbors a unique architecture of its lateral surface with periodic crests, relying on the presence of subsarcolemmal mitochondria (SSM) with unknown role. Here, we investigated the development and functional role of CM crests during the postnatal period. We found in rodents that CM crest maturation occurs late between postnatal day 20 (P20) and P60 through both SSM biogenesis, swelling and crest-crest lateral interactions between adjacent CM, promoting tissue compaction. At the functional level, we showed that the P20-P60 period is dedicated to the improvement of relaxation. Interestingly, crest maturation specifically contributes to an atypical CM hypertrophy of its short axis, without myofibril addition, but relying on CM lateral stretching. Mechanistically, using constitutive and conditional CM-specific knock-out mice, we identified ephrin-B1, a lateral membrane stabilizer, as a molecular determinant of P20-P60 crest maturation, governing both the CM lateral stretch and the diastolic function, thus highly suggesting a link between crest maturity and diastole. Remarkably, while young adult CM-specific Efnb1 KO mice essentially exhibit an impairment of the ventricular diastole with preserved ejection fraction and exercise intolerance, they progressively switch toward systolic heart failure with 100% KO mice dying after 13 months, indicative of a critical role of CM-ephrin-B1 in the adult heart function. This study highlights the molecular determinants and the biological implication of a new late P20-P60 postnatal developmental stage of the heart in rodents during which, in part, ephrin-B1 specifically regulates the maturation of the CM surface crests and of the diastolic function.


Subject(s)
Ephrin-B1 , Myocytes, Cardiac , Animals , Mice , Diastole , Myofibrils
19.
Cell Rep ; 39(2): 110674, 2022 04 12.
Article in English | MEDLINE | ID: mdl-35417722

ABSTRACT

Liver physiology is circadian and sensitive to feeding and insulin. Food intake regulates insulin secretion and is a dominant signal for the liver clock. However, how much insulin contributes to the effect of feeding on the liver clock and rhythmic gene expression remains to be investigated. Insulin action partly depends on changes in insulin receptor (IR)-dependent gene expression. Here, we use hepatocyte-restricted gene deletion of IR to evaluate its role in the regulation and oscillation of gene expression as well as in the programming of the circadian clock in the adult mouse liver. We find that, in the absence of IR, the rhythmicity of core-clock gene expression is altered in response to day-restricted feeding. This change in core-clock gene expression is associated with defective reprogramming of liver gene expression. Our data show that an intact hepatocyte insulin receptor is required to program the liver clock and associated rhythmic gene expression.


Subject(s)
ARNTL Transcription Factors , Circadian Clocks , ARNTL Transcription Factors/genetics , ARNTL Transcription Factors/metabolism , Animals , CLOCK Proteins/genetics , CLOCK Proteins/metabolism , Circadian Clocks/genetics , Circadian Rhythm/genetics , Gene Expression , Gene Expression Regulation , Hepatocytes/metabolism , Insulin/metabolism , Liver/metabolism , Mice , Receptor, Insulin/genetics , Receptor, Insulin/metabolism
20.
Cell Rep ; 39(10): 110910, 2022 06 07.
Article in English | MEDLINE | ID: mdl-35675775

ABSTRACT

In hepatocytes, peroxisome proliferator-activated receptor α (PPARα) orchestrates a genomic and metabolic response required for homeostasis during fasting. This includes the biosynthesis of ketone bodies and of fibroblast growth factor 21 (FGF21). Here we show that in the absence of adipose triglyceride lipase (ATGL) in adipocytes, ketone body and FGF21 production is impaired upon fasting. Liver gene expression analysis highlights a set of fasting-induced genes sensitive to both ATGL deletion in adipocytes and PPARα deletion in hepatocytes. Adipose tissue lipolysis induced by activation of the ß3-adrenergic receptor also triggers such PPARα-dependent responses not only in the liver but also in brown adipose tissue (BAT). Intact PPARα activity in hepatocytes is required for the cross-talk between adipose tissues and the liver during fat mobilization.


Subject(s)
Lipolysis , PPAR alpha , Adipose Tissue/metabolism , Adipose Tissue, Brown/metabolism , Adipose Tissue, White/metabolism , Hepatocytes/metabolism , Ketone Bodies/metabolism , Lipolysis/physiology , PPAR alpha/metabolism
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