Literature DB >> 22895779

Hyperammonemia-mediated autophagy in skeletal muscle contributes to sarcopenia of cirrhosis.

Jia Qiu1, Cynthia Tsien, Samjhana Thapalaya, Arvind Narayanan, Conrad Chris Weihl, James K Ching, Bijan Eghtesad, Kamini Singh, Xiaoming Fu, George Dubyak, Christine McDonald, Alex Almasan, Stanley L Hazen, Sathyamangla V Naga Prasad, Srinivasan Dasarathy.   

Abstract

Hyperammonemia and sarcopenia (loss of skeletal muscle) are consistent abnormalities in cirrhosis and portosystemic shunting. We have shown that muscle ubiquitin-proteasome components are not increased with hyperammonemia despite sarcopenia. This suggests that an alternative mechanism of proteolysis contributes to sarcopenia in cirrhosis. We hypothesized that autophagy could be this alternative pathway since we observed increases in classic autophagy markers, increased LC3 lipidation, beclin-1 expression, and p62 degradation in immunoblots of skeletal muscle protein in cirrhotic patients. We observed similar changes in these autophagy markers in the portacaval anastamosis (PCA) rat model. To determine the mechanistic relationship between hyperammonemia and autophagy, we exposed murine C(2)C(12) myotubes to ammonium acetate. Significant increases in LC3 lipidation, beclin-1 expression, and p62 degradation occurred by 1 h, whereas autophagy gene expression (LC3, Atg5, Atg7, beclin-1) increased at 24 h. C(2)C(12) cells stably expressing GFP-LC3 or GFP-mCherry-LC3 constructs showed increased formation of mature autophagosomes supported by electron microscopic studies. Hyperammonemia also increased autophagic flux in mice, as quantified by an in vivo autophagometer. Because hyperammonemia induces nitration of proteins in astrocytes, we quantified global muscle protein nitration in cirrhotic patients, in the PCA rat, and in C(2)C(12) cells treated with ammonium acetate. Increased protein nitration was observed in all of these systems. Furthermore, colocalization of nitrated proteins with GFP-LC3-positive puncta in hyperammonemic C(2)C(12) cells suggested that autophagy is involved in degradation of nitrated proteins. These observations show that increased skeletal muscle autophagy in cirrhosis is mediated by hyperammonemia and may contribute to sarcopenia of cirrhosis.

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Year:  2012        PMID: 22895779      PMCID: PMC3469607          DOI: 10.1152/ajpendo.00183.2012

Source DB:  PubMed          Journal:  Am J Physiol Endocrinol Metab        ISSN: 0193-1849            Impact factor:   4.310


  47 in total

1.  Glutaminolysis yields a metabolic by-product that stimulates autophagy.

Authors:  Christina H Eng; Robert T Abraham
Journal:  Autophagy       Date:  2010-10-20       Impact factor: 16.016

2.  Ammonia derived from glutaminolysis is a diffusible regulator of autophagy.

Authors:  Christina H Eng; Ker Yu; Judy Lucas; Eileen White; Robert T Abraham
Journal:  Sci Signal       Date:  2010-04-27       Impact factor: 8.192

Review 3.  Ammonia: a diffusible factor released by proliferating cells that induces autophagy.

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4.  Muscle wasting is associated with mortality in patients with cirrhosis.

Authors:  Aldo J Montano-Loza; Judith Meza-Junco; Carla M M Prado; Jessica R Lieffers; Vickie E Baracos; Vincent G Bain; Michael B Sawyer
Journal:  Clin Gastroenterol Hepatol       Date:  2011-09-03       Impact factor: 11.382

Review 5.  Malnutrition in cirrhosis: contribution and consequences of sarcopenia on metabolic and clinical responses.

Authors:  Pranav Periyalwar; Srinivasan Dasarathy
Journal:  Clin Liver Dis       Date:  2012-01-23       Impact factor: 6.126

6.  Quantification of gluconeogenesis in cirrhosis: response to glucagon.

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9.  Autophagy following heat stress: the role of aging and protein nitration.

Authors:  Jamie M Swanlund; Kevin C Kregel; Terry D Oberley
Journal:  Autophagy       Date:  2008-10-12       Impact factor: 16.016

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  68 in total

1.  Ammonia lowering reverses sarcopenia of cirrhosis by restoring skeletal muscle proteostasis.

Authors:  Avinash Kumar; Gangarao Davuluri; Rafaella Nascimento E Silva; Marielle P K J Engelen; Gabrie A M Ten Have; Richard Prayson; Nicolaas E P Deutz; Srinivasan Dasarathy
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2.  Impact of muscle wasting on survival in patients with liver cirrhosis.

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Review 3.  Sarcopenia in Alcoholic Liver Disease: Clinical and Molecular Advances.

Authors:  Jaividhya Dasarathy; Arthur J McCullough; Srinivasan Dasarathy
Journal:  Alcohol Clin Exp Res       Date:  2017-07-11       Impact factor: 3.455

Review 4.  Energy metabolism in cachexia.

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Journal:  EMBO Rep       Date:  2019-03-19       Impact factor: 8.807

5.  The bile duct ligated rat: A relevant model to study muscle mass loss in cirrhosis.

Authors:  Cristina R Bosoi; Mariana M Oliveira; Rafael Ochoa-Sanchez; Mélanie Tremblay; Gabriella A Ten Have; Nicolaas E Deutz; Christopher F Rose; Chantal Bemeur
Journal:  Metab Brain Dis       Date:  2016-12-15       Impact factor: 3.584

6.  Ammonia elicits a different myogenic response in avian and murine myotubes.

Authors:  Rachel A Stern; Srinivasan Dasarathy; Paul E Mozdziak
Journal:  In Vitro Cell Dev Biol Anim       Date:  2016-08-29       Impact factor: 2.416

7.  Exercise and physical activity in cirrhosis: opportunities or perils.

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Review 8.  EASL Clinical Practice Guidelines on nutrition in chronic liver disease.

Authors: 
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Review 9.  Cause and management of muscle wasting in chronic liver disease.

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Journal:  Curr Opin Gastroenterol       Date:  2016-05       Impact factor: 3.287

Review 10.  Nutrition and exercise in the management of liver cirrhosis.

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