Transfer of Intestinal Microbiota From Lean Donors Increases Insulin Sensitivity in Individuals With Metabolic Syndrome
Transfer of Intestinal Microbiota From Lean Donors Increases Insulin Sensitivity in Individuals With Metabolic Syndrome
- Front Matter
11
- 10.1016/j.jpeds.2012.02.013
- Mar 30, 2012
- The Journal of Pediatrics
The Oral Disposition Index: A Valuable Estimate of β-Cell Function in Obese Youth
- Research Article
104
- 10.1194/jlr.m400440-jlr200
- Mar 1, 2005
- Journal of Lipid Research
Fasting readily induces hepatic steatosis. Hepatic steatosis is associated with hepatic insulin resistance. The purpose of the present study was to document the effects of 16 h of fasting in wild-type mice on insulin sensitivity in liver and skeletal muscle in relation to 1) tissue accumulation of triglycerides (TGs) and 2) changes in mRNA expression of metabolically relevant genes. Sixteen hours of fasting did not show an effect on hepatic insulin sensitivity in terms of glucose production in the presence of increased hepatic TG content. In muscle, however, fasting resulted in increased insulin sensitivity, with increased muscle glucose uptake without changes in muscle TG content. In liver, fasting resulted in increased mRNA expression of genes promoting gluconeogenesis and TG synthesis but in decreased mRNA expression of genes involved in glycogenolysis and fatty acid synthesis. In muscle, increased mRNA expression of genes promoting glucose uptake, as well as lipogenesis and beta-oxidation, was found. In conclusion, 16 h of fasting does not induce hepatic insulin resistance, although it causes liver steatosis, whereas muscle insulin sensitivity increases without changes in muscle TG content. Therefore, fasting induces differential changes in tissue-specific insulin sensitivity, and liver and muscle TG contents are unlikely to be involved in these changes.
- Research Article
2
- 10.1016/j.yclnex.2018.04.003
- May 4, 2018
- Clinical Nutrition Experimental
Gut morphology and gene expression in obesity: Short review and perspectives
- Research Article
347
- 10.1053/j.gastro.2014.03.001
- Mar 11, 2014
- Gastroenterology
The Intestinal Metabolome: An Intersection Between Microbiota and Host
- Research Article
623
- 10.4065/83.4.460
- Apr 1, 2008
- Mayo Clinic Proceedings
Gut Microbiota and Its Possible Relationship With Obesity
- Research Article
179
- 10.1016/j.fertnstert.2006.11.082
- Feb 12, 2007
- Fertility and Sterility
The effect of cinnamon extract on insulin resistance parameters in polycystic ovary syndrome: a pilot study
- Research Article
567
- 10.1074/jbc.m510258200
- Apr 1, 2006
- Journal of Biological Chemistry
The farnesoid X receptor (FXR) is a bile acid (BA)-activated nuclear receptor that plays a major role in the regulation of BA and lipid metabolism. Recently, several studies have suggested a potential role of FXR in the control of hepatic carbohydrate metabolism, but its contribution to the maintenance of peripheral glucose homeostasis remains to be established. FXR-deficient mice display decreased adipose tissue mass, lower serum leptin concentrations, and elevated plasma free fatty acid levels. Glucose and insulin tolerance tests revealed that FXR deficiency is associated with impaired glucose tolerance and insulin resistance. Moreover, whole-body glucose disposal during a hyperinsulinemic euglycemic clamp is decreased in FXR-deficient mice. In parallel, FXR deficiency alters distal insulin signaling, as reflected by decreased insulin-dependent Akt phosphorylation in both white adipose tissue and skeletal muscle. Whereas FXR is not expressed in skeletal muscle, it was detected at a low level in white adipose tissue in vivo and induced during adipocyte differentiation in vitro. Moreover, mouse embryonic fibroblasts derived from FXR-deficient mice displayed impaired adipocyte differentiation, identifying a direct role for FXR in adipocyte function. Treatment of differentiated 3T3-L1 adipocytes with the FXR-specific synthetic agonist GW4064 enhanced insulin signaling and insulin-stimulated glucose uptake. Finally, treatment with GW4064 improved insulin resistance in genetically obese ob/ob mice in vivo. Although the underlying molecular mechanisms remain to be unraveled, these results clearly identify a novel role of FXR in the regulation of peripheral insulin sensitivity and adipocyte function. This unexpected function of FXR opens new perspectives for the treatment of type 2 diabetes.
- Front Matter
10
- 10.1016/j.jpeds.2014.11.048
- Jan 13, 2015
- The Journal of Pediatrics
Prematurity and Perinatal Antibiotics: A Tale of Two Factors Influencing Development of the Neonatal Gut Microbiota
- Research Article
22
- 10.1016/j.jand.2012.10.018
- Feb 1, 2013
- Journal of the Academy of Nutrition and Dietetics
Prediabetes: A Prevalent and Treatable, but Often Unrecognized, Clinical Condition
- Research Article
186
- 10.1053/j.gastro.2014.01.050
- Jan 28, 2014
- Gastroenterology
Manipulation of the Microbiota for Treatment of IBS and IBD—Challenges and Controversies
- Research Article
114
- 10.1053/j.gastro.2014.03.032
- Mar 24, 2014
- Gastroenterology
The Gut Microbiome in Health and Disease
- Research Article
66
- 10.1074/jbc.m110.176321
- Nov 1, 2010
- Journal of Biological Chemistry
HIV protease inhibitors acutely block glucose transporters (GLUTs) in vitro, and this may contribute to altered glucose homeostasis in vivo. However, several GLUT-independent mechanisms have been postulated. To determine the contribution of GLUT blockade to protease inhibitor-mediated glucose dysregulation, the effects of ritonavir were investigated in mice lacking the insulin-sensitive glucose transporter GLUT4 (G4KO). G4KO and control C57BL/6J mice were administered ritonavir or vehicle at the start of an intraperitoneal glucose tolerance test and during hyperinsulinemic-euglycemic clamps. G4KO mice exhibited elevated fasting blood glucose compared with C57BL/6J mice. Ritonavir impaired glucose tolerance in control mice but did not exacerbate glucose intolerance in G4KO mice. Similarly, ritonavir reduced peripheral insulin sensitivity in control mice but not in G4KO mice. Serum insulin levels were reduced in vivo in ritonavir-treated mice. Ritonavir reduced serum leptin levels in C57BL/6J mice but had no effect on serum adiponectin. No change in these adipokines was observed following ritonavir treatment of G4KO mice. These data confirm that a primary effect of ritonavir on peripheral glucose disposal is mediated through direct inhibition of GLUT4 activity in vivo. The ability of GLUT4 blockade to contribute to derangements in the other molecular pathways that influence insulin sensitivity remains to be determined.
- Research Article
260
- 10.1016/j.cmet.2005.06.006
- Jul 1, 2005
- Cell Metabolism
Prevention of hepatic steatosis and hepatic insulin resistance in mitochondrial acyl-CoA:glycerol-sn-3-phosphate acyltransferase 1 knockout mice
- Research Article
28
- 10.1016/j.fertnstert.2006.05.061
- Oct 30, 2006
- Fertility and Sterility
Rosiglitazone treatment alleviates inflammation and improves liver function in overweight women with polycystic ovary syndrome: a randomized placebo-controlled study
- Discussion
5
- 10.1053/j.gastro.2019.02.048
- Mar 28, 2019
- Gastroenterology
What Can We Learn From Mouse Models About Bile Acid-Mediated Changes After Bariatric Surgery?