Literature DB >> 21787864

Glucose-6-phosphate isomerase deficiency results in mTOR activation, failed translocation of lipin 1α to the nucleus and hypersensitivity to glucose: Implications for the inherited glycolytic disease.

Jorge F Haller1, Sarah A Krawczyk, Lubov Gostilovitch, Barbara E Corkey, Raphael A Zoeller.   

Abstract

Inherited glucose-6-phosphate isomerase (GPI) deficiency is the second most frequent glycolytic erythroenzymopathy in humans. Patients present with non-spherocytic anemia of variable severity and with neuromuscular dysfunction. We previously described Chinese hamster (CHO) cell lines with mutations in GPI and loss of GPI activity. This resulted in a temperature sensitivity and severe reduction in the synthesis of glycerolipids due to a reduction in phosphatidate phosphatase (PAP). In the current article we attempt to describe the nature of this pleiotropic effect. We cloned and sequenced the CHO lipin 1 cDNA, a gene that codes for PAP activity. Overexpression of lipin 1 in the GPI-deficient cell line, GroD1 resulted in increased PAP activity, however it failed to restore glycerolipid biosynthesis. Fluorescence microscopy showed a failure of GPI-deficient cells to localize lipin 1α to the nucleus. We also found that glucose-6-phosphate levels in GroD1 cells were 10-fold over normal. Lowering glucose levels in the growth medium partially restored glycerolipid biosynthesis and nuclear localization of lipin 1α. Western blot analysis of the elements within the mTOR pathway, which influences lipin 1 activity, was consistent with an abnormal activation of this system. Combined, these data suggest that GPI deficiency results in an accumulation of glucose-6-phosphate, and possibly other glucose-derived metabolites, leading to activation of mTOR and sequestration of lipin 1 to the cytosol, preventing its proper functioning. These results shed light on the mechanism underlying the pathologies associated with inherited GPI deficiency and the variability in the severity of the symptoms observed in these patients. 2011 Elsevier B.V. All rights reserved.

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Year:  2011        PMID: 21787864      PMCID: PMC3185221          DOI: 10.1016/j.bbadis.2011.07.007

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  44 in total

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Review 4.  Glucose-6-phosphate isomerase deficiency.

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Journal:  Baillieres Best Pract Res Clin Haematol       Date:  2000-03

5.  Insulin-stimulated interaction with 14-3-3 promotes cytoplasmic localization of lipin-1 in adipocytes.

Authors:  Miklós Péterfy; Thurl E Harris; Naoya Fujita; Karen Reue
Journal:  J Biol Chem       Date:  2009-12-02       Impact factor: 5.157

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Review 9.  Inherited erythrocyte metabolic and membrane disorders.

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Journal:  Med Clin North Am       Date:  1980-07       Impact factor: 5.456

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Journal:  Hum Genet       Date:  1978-02-16       Impact factor: 4.132

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  10 in total

1.  MicroRNA-217 promotes ethanol-induced fat accumulation in hepatocytes by down-regulating SIRT1.

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Journal:  J Biol Chem       Date:  2012-02-03       Impact factor: 5.157

2.  Neuronal Activity-Induced Sterol Regulatory Element Binding Protein-1 (SREBP1) is Disrupted in Dysbindin-Null Mice-Potential Link to Cognitive Impairment in Schizophrenia.

Authors:  Yong Chen; Sookhee Bang; Mary F McMullen; Hala Kazi; Konrad Talbot; Mei-Xuan Ho; Greg Carlson; Steven E Arnold; Wei-Yi Ong; Sangwon F Kim
Journal:  Mol Neurobiol       Date:  2016-02-12       Impact factor: 5.590

3.  Too sweet for autophagy: hexokinase inhibition of mTORC1 activates autophagy.

Authors:  Mondira Kundu
Journal:  Mol Cell       Date:  2014-02-20       Impact factor: 17.970

Review 4.  Hexokinase II integrates energy metabolism and cellular protection: Akting on mitochondria and TORCing to autophagy.

Authors:  D J Roberts; S Miyamoto
Journal:  Cell Death Differ       Date:  2014-10-17       Impact factor: 15.828

5.  Deletion of SIRT1 from hepatocytes in mice disrupts lipin-1 signaling and aggravates alcoholic fatty liver.

Authors:  Huquan Yin; Ming Hu; Xiaomei Liang; Joanne M Ajmo; Xiaoling Li; Ramon Bataller; Gemma Odena; Stanley M Stevens; Min You
Journal:  Gastroenterology       Date:  2013-11-18       Impact factor: 22.682

Review 6.  Regulation of innate immune cell function by mTOR.

Authors:  Thomas Weichhart; Markus Hengstschläger; Monika Linke
Journal:  Nat Rev Immunol       Date:  2015-10       Impact factor: 53.106

Review 7.  Liver glucose metabolism in humans.

Authors:  María M Adeva-Andany; Noemi Pérez-Felpete; Carlos Fernández-Fernández; Cristóbal Donapetry-García; Cristina Pazos-García
Journal:  Biosci Rep       Date:  2016-11-29       Impact factor: 3.840

Review 8.  mTOR-Mediated Regulation of Dendritic Cell Differentiation and Function.

Authors:  Nyamdelger Sukhbaatar; Markus Hengstschläger; Thomas Weichhart
Journal:  Trends Immunol       Date:  2016-09-07       Impact factor: 16.687

9.  RNA-Seq identifies SNP markers for growth traits in rainbow trout.

Authors:  Mohamed Salem; Roger L Vallejo; Timothy D Leeds; Yniv Palti; Sixin Liu; Annas Sabbagh; Caird E Rexroad; Jianbo Yao
Journal:  PLoS One       Date:  2012-05-04       Impact factor: 3.240

10.  Distinct roles of the phosphatidate phosphatases lipin 1 and 2 during adipogenesis and lipid droplet biogenesis in 3T3-L1 cells.

Authors:  Hiroshi Sembongi; Merce Miranda; Gil-Soo Han; Stylianos Fakas; Neil Grimsey; Joan Vendrell; George M Carman; Symeon Siniossoglou
Journal:  J Biol Chem       Date:  2013-10-16       Impact factor: 5.157

  10 in total

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