Targeting Pyruvate Carboxylase Reduces Gluconeogenesis and Adiposity and Improves Insulin Resistance

Author:

Kumashiro Naoki12,Beddow Sara A.3,Vatner Daniel F.2,Majumdar Sachin K.2,Cantley Jennifer L.12,Guebre-Egziabher Fitsum2,Fat Ioana2,Guigni Blas2,Jurczak Michael J.2,Birkenfeld Andreas L.2,Kahn Mario2,Perler Bryce K.2,Puchowicz Michelle A.4,Manchem Vara Prasad5,Bhanot Sanjay5,Still Christopher D.6,Gerhard Glenn S.6,Petersen Kitt Falk2,Cline Gary W.2,Shulman Gerald I.127,Samuel Varman T.23

Affiliation:

1. Howard Hughes Medical Institute, Yale University School of Medicine, New Haven, Connecticut

2. Department of Internal Medicine, Yale University School of Medicine, New Haven, Connecticut

3. Veterans Affairs Medical Center, West Haven, Connecticut

4. Department of Nutrition, Case Western Reserve University, Cleveland, Ohio

5. ISIS Pharmaceuticals, Carlsbad, California

6. Weis Center for Research, Geisinger Clinic, Danville, Pennsylvania

7. Department of Cellular & Molecular Physiology, Yale University School of Medicine, New Haven, Connecticut

Abstract

We measured the mRNA and protein expression of the key gluconeogenic enzymes in human liver biopsy specimens and found that only hepatic pyruvate carboxylase protein levels related strongly with glycemia. We assessed the role of pyruvate carboxylase in regulating glucose and lipid metabolism in rats through a loss-of-function approach using a specific antisense oligonucleotide (ASO) to decrease expression predominantly in liver and adipose tissue. Pyruvate carboxylase ASO reduced plasma glucose concentrations and the rate of endogenous glucose production in vivo. Interestingly, pyruvate carboxylase ASO also reduced adiposity, plasma lipid concentrations, and hepatic steatosis in high fat–fed rats and improved hepatic insulin sensitivity. Pyruvate carboxylase ASO had similar effects in Zucker Diabetic Fatty rats. Pyruvate carboxylase ASO did not alter de novo fatty acid synthesis, lipolysis, or hepatocyte fatty acid oxidation. In contrast, the lipid phenotype was attributed to a decrease in hepatic and adipose glycerol synthesis, which is important for fatty acid esterification when dietary fat is in excess. Tissue-specific inhibition of pyruvate carboxylase is a potential therapeutic approach for nonalcoholic fatty liver disease, hepatic insulin resistance, and type 2 diabetes.

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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