Literature DB >> 28682939

Burn Trauma Acutely Increases the Respiratory Capacity and Function of Liver Mitochondria.

Fredrick J Bohanon1,2, Omar Nunez Lopez1,2, David N Herndon1,2,3, Xiaofu Wang1, Nisha Bhattarai1,2, Amina E Ayadi1,2, Anesh Prasai1,2, Jayson W Jay1,2, Yesenia Rojas-Khalil1, Tracy E Toliver-Kinsky2,4, Celeste C Finnerty1,2,5, Ravi S Radhakrishnan1,3, Craig Porter1,2.   

Abstract

BACKGROUND: A complete understanding of the role of the liver in burn-induced hypermetabolism is lacking. We investigated the acute effect of severe burn trauma on liver mitochondrial respiratory capacity and coupling control as well as the signaling events underlying these alterations.
METHODS: Male BALB/c mice (8-12 weeks) received full-thickness scald burns on ∼30% of the body surface. Liver tissue was harvested 24 h postinjury. Mitochondrial respiration was determined by high-resolution respirometry. Citrate synthase activity was determined as a proxy of mitochondrial density. Male Sprague-Dawley rats received full-thickness scald burns to ∼60% of the body surface. Serum was collected 24 h postinjury. HepG2 cells were cultured with serum-enriched media from either sham- or burn-treated rats. Protein levels were analyzed via western blot.
RESULTS: Mass-specific (P = 0.01) and mitochondrial-specific (P = 0.01) respiration coupled to ATP production significantly increased in the liver after burn. The respiratory control ratio for ADP (P = 0.04) and the mitochondrial flux control ratio (P = 0.03) were elevated in the liver of burned animals. Complex III and Complex IV protein abundance in the liver increased after burn by 17% and 14%, respectively. Exposure of HepG2 cells to serum from burned rats increased the pAMPKα:AMPKα ratio (P < 0.001) and levels of SIRT1 (P = 0.01), Nrf2 (P < 0.001), and PGC1α (P = 0.02).
CONCLUSIONS: Severe burn trauma augments respiratory capacity and function of liver mitochondria, adaptations that augment ATP production. This response may be mediated by systemic factors that activate signaling proteins responsible for regulating cellular energy metabolism and mitochondrial biogenesis.

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Year:  2018        PMID: 28682939      PMCID: PMC5754251          DOI: 10.1097/SHK.0000000000000935

Source DB:  PubMed          Journal:  Shock        ISSN: 1073-2322            Impact factor:   3.454


  35 in total

1.  Severe Burn Injury Induces Thermogenically Functional Mitochondria in Murine White Adipose Tissue.

Authors:  Craig Porter; David N Herndon; Nisha Bhattarai; John O Ogunbileje; Bartosz Szczesny; Csaba Szabo; Tracy Toliver-Kinsky; Labros S Sidossis
Journal:  Shock       Date:  2015-09       Impact factor: 3.454

2.  Systemic responses to injury and the healing wound.

Authors:  D W Wilmore; L H Aulick
Journal:  JPEN J Parenter Enteral Nutr       Date:  1980 Mar-Apr       Impact factor: 4.016

3.  Glucose metabolism in severely burned patients.

Authors:  R R Wolfe; M J Durkot; J R Allsop; J F Burke
Journal:  Metabolism       Date:  1979-10       Impact factor: 8.694

Review 4.  The metabolic basis of the increase of the increase in energy expenditure in severely burned patients.

Authors:  Y M Yu; R G Tompkins; C M Ryan; V R Young
Journal:  JPEN J Parenter Enteral Nutr       Date:  1999 May-Jun       Impact factor: 4.016

Review 5.  Metabolic control of mitochondrial biogenesis through the PGC-1 family regulatory network.

Authors:  Richard C Scarpulla
Journal:  Biochim Biophys Acta       Date:  2010-10-13

6.  Functional changes of the NADH respiratory chain in rat-liver mitochondria and the content changes of high-energy phosphate groups in rat liver and heart during the early phase of burn injury.

Authors:  X M Wang; K M Chen; Y Shi; H P Shi
Journal:  Burns       Date:  1990-10       Impact factor: 2.744

7.  Differential acute and chronic effects of burn trauma on murine skeletal muscle bioenergetics.

Authors:  Craig Porter; David N Herndon; Nisha Bhattarai; John O Ogunbileje; Bartosz Szczesny; Csaba Szabo; Tracy Toliver-Kinsky; Labros S Sidossis
Journal:  Burns       Date:  2015-11-23       Impact factor: 2.744

8.  Inverse regulation of protein turnover and amino acid transport in skeletal muscle of hypercatabolic patients.

Authors:  Gianni Biolo; R Y Declan Fleming; Sergio P Maggi; Thuan T Nguyen; David N Herndon; Robert R Wolfe
Journal:  J Clin Endocrinol Metab       Date:  2002-07       Impact factor: 5.958

9.  The effects of thermal injury on mitochondrial oxygen consumption and the glycerol phosphate shuttle.

Authors:  H Hu; R L Greif; C W Goodwin
Journal:  Metabolism       Date:  1994-07       Impact factor: 8.694

10.  Changes in liver function and size after a severe thermal injury.

Authors:  Marc G Jeschke; Ronald P Micak; Celeste C Finnerty; David N Herndon
Journal:  Shock       Date:  2007-08       Impact factor: 3.454

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  6 in total

1.  Burn-Induced Impairment of Ileal Muscle Contractility Is Associated with Increased Extracellular Matrix Components.

Authors:  Claire B Cummins; Yanping Gu; Xiaofu Wang; You-Min Lin; Xuan-Zheng Shi; Ravi S Radhakrishnan
Journal:  J Gastrointest Surg       Date:  2019-10-21       Impact factor: 3.452

2.  Reply to The Letter to The Editor: Adipocyte Browning in Response to Trauma: Some Important Methodological Considerations.

Authors:  Carly M Knuth; Christopher Auger; Leon Chi; Dalia Barayan; Abdikarim Abdullahi; Marc G Jeschke
Journal:  Shock       Date:  2021-11-01       Impact factor: 3.454

3.  Effect of Mitochondrial Antioxidant (Mito-TEMPO) on Burn-Induced Cardiac Dysfunction.

Authors:  Jake J Wen; Taylor P Williams; Claire B Cummins; Kayla M Colvill; Geetha L Radhakrishnan; Ravi S Radhakrishnan
Journal:  J Am Coll Surg       Date:  2021-01-07       Impact factor: 6.113

4.  Brown adipose tissue recruitment in a rodent model of severe burns.

Authors:  Nisha Bhattarai; Victoria G Rontoyanni; Evan Ross; John O Ogunbileje; Andrew J Murton; Craig Porter
Journal:  Burns       Date:  2020-05-19       Impact factor: 2.744

5.  Sildenafil Recovers Burn-Induced Cardiomyopathy.

Authors:  Jake J Wen; Claire Cummins; Ravi S Radhakrishnan
Journal:  Cells       Date:  2020-06-03       Impact factor: 6.600

6.  Burn-Induced Cardiac Mitochondrial Dysfunction via Interruption of the PDE5A-cGMP-PKG Pathway.

Authors:  Jake J Wen; Claire B Cummins; Ravi S Radhakrishnan
Journal:  Int J Mol Sci       Date:  2020-03-28       Impact factor: 5.923

  6 in total

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