Literature DB >> 28727166

Hepatocytes contribute to residual glucose production in a mouse model for glycogen storage disease type Ia.

Brenda S Hijmans1, Andreas Boss2, Theo H van Dijk3, Maud Soty4,5,6, Henk Wolters1, Elodie Mutel4,5,6, Albert K Groen1,3, Terry G J Derks7, Gilles Mithieux4,5,6, Arend Heerschap2, Dirk-Jan Reijngoud1,3, Fabienne Rajas4,5,6, Maaike H Oosterveer1.   

Abstract

It is a long-standing enigma how glycogen storage disease (GSD) type I patients retain a limited capacity for endogenous glucose production despite the loss of glucose-6-phosphatase activity. Insight into the source of residual endogenous glucose production is of clinical importance given the risk of sudden death in these patients, but so far contradictory mechanisms have been proposed. We investigated glucose-6-phosphatase-independent endogenous glucose production in hepatocytes isolated from a liver-specific GSD Ia mouse model (L-G6pc-/- mice) and performed real-time analysis of hepatic glucose fluxes and glycogen metabolism in L-G6pc-/- mice using state-of-the-art stable isotope methodologies. Here we show that G6pc-deficient hepatocytes are capable of producing glucose. In vivo analysis of hepatic glucose metabolism revealed that the hepatic glucokinase flux was decreased by 95% in L-G6pc-/- mice. It also showed increased glycogen phosphorylase flux in L-G6pc-/- mice, which is coupled to the release of free glucose through glycogen debranching. Although the ex vivo activities of debranching enzyme and lysosomal acid maltase, two major hepatic α-glucosidases, were unaltered in L-G6pc-/- mice, pharmacological inhibition of α-glucosidase activity almost completely abolished residual glucose production by G6pc-deficient hepatocytes.
CONCLUSION: Our data indicate that hepatocytes contribute to residual glucose production in GSD Ia. We show that α-glucosidase activity, i.e. glycogen debranching and/or lysosomal glycogen breakdown, contributes to residual glucose production by GSD Ia hepatocytes. A strong reduction in hepatic GCK flux in L-G6pc-/- mice furthermore limits the phosphorylation of free glucose synthesized by G6pc-deficient hepatocytes, allowing the release of glucose into the circulation. The almost complete abrogation of GCK flux in G6pc-deficient liver also explains the contradictory reports on residual glucose production in GSD Ia patients. (Hepatology 2017;66:2042-2054).
© 2017 by the American Association for the Study of Liver Diseases.

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Year:  2017        PMID: 28727166     DOI: 10.1002/hep.29389

Source DB:  PubMed          Journal:  Hepatology        ISSN: 0270-9139            Impact factor:   17.425


  9 in total

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Journal:  Hum Mol Genet       Date:  2019-01-01       Impact factor: 6.150

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Journal:  J Inherit Metab Dis       Date:  2018-01-09       Impact factor: 4.982

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Review 5.  Dynamic Methods for Childhood Hypoglycemia Phenotyping: A Narrative Review.

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6.  Complex patterns of inheritance, including synergistic heterozygosity, in inborn errors of metabolism: Implications for precision medicine driven diagnosis and treatment.

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7.  Intracellular lipids are an independent cause of liver injury and chronic kidney disease in non alcoholic fatty liver disease-like context.

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Review 8.  Glucose-6 Phosphate, A Central Hub for Liver Carbohydrate Metabolism.

Authors:  Fabienne Rajas; Amandine Gautier-Stein; Gilles Mithieux
Journal:  Metabolites       Date:  2019-11-20

9.  Modeling Phenotypic Heterogeneity of Glycogen Storage Disease Type 1a Liver Disease in Mice by Somatic CRISPR/CRISPR-associated protein 9-Mediated Gene Editing.

Authors:  Martijn G S Rutten; Terry G J Derks; Nicolette C A Huijkman; Trijnie Bos; Niels J Kloosterhuis; Kees C W A van de Kolk; Justina C Wolters; Mirjam H Koster; Laura Bongiovanni; Rachel E Thomas; Alain de Bruin; Bart van de Sluis; Maaike H Oosterveer
Journal:  Hepatology       Date:  2021-08-15       Impact factor: 17.425

  9 in total

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