Literature DB >> 19190234

Carbon monoxide rescues mice from lethal sepsis by supporting mitochondrial energetic metabolism and activating mitochondrial biogenesis.

Steve Lancel1, Sidi Mohamed Hassoun, Raphael Favory, Brigitte Decoster, Roberto Motterlini, Remi Neviere.   

Abstract

Use of metal carbonyl-based compounds capable of releasing carbon monoxide (CO) in biological systems have emerged as a potential adjunctive therapy for sepsis via their antioxidant, anti-inflammatory, and antiapoptotic effects. The role of CO in regulation of mitochondrial dysfunction and biogenesis associated with sepsis has not been investigated. In the present study, we employed a ruthenium-based water-soluble CO carrier, tricarbonylchoro(glycinato)ruthenium (II) (CORM-3), one of the novel CO-releasing molecules (CO-RMs), to test whether CO can improve cardiac mitochondrial dysfunction and survival in peritonitis-induced sepsis. Peritonitis was performed in mice by cecal ligation and perforation. Tumor necrosis factor-alpha, interleukin-10, and nitrite/nitrate plasma levels were tested to evaluate the systemic inflammatory response. Functional mitochondrial studies included determination of membrane potential, respiration, and redox status. Oxidative stress was evaluated by measurements of mitochondrial hydrogen peroxide, carbonyl protein and GSH levels. Mitochondrial biogenesis was assessed by peroxisome proliferator-activated receptor gamma coactivator (PGC)-1alpha protein expression and mitochondrial DNA (mtDNA) copy number. The systemic inflammatory response elicited by peritonitis was accompanied by mitochondrial energetic metabolism deterioration and reduced PGC-1alpha protein expression. CORM-3 treatment in septic mice restored the deleterious effects of sepsis on mitochondrial membrane potential, respiratory control ratio, and energetics. It is interesting that administration of CORM-3 during sepsis elicited a mild oxidative stress response that stimulated mitochondrial biogenesis with PGC-1alpha protein expression and mtDNA copy number increases. Our results reveal that delivery of controlled amounts of CO dramatically reduced mortality in septic mice, indicating that CO-RMs could be used therapeutically to prevent organ dysfunction and death in sepsis.

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Year:  2009        PMID: 19190234     DOI: 10.1124/jpet.108.148049

Source DB:  PubMed          Journal:  J Pharmacol Exp Ther        ISSN: 0022-3565            Impact factor:   4.030


  73 in total

1.  Survival in critical illness is associated with early activation of mitochondrial biogenesis.

Authors:  Jane E Carré; Jean-Christophe Orban; Lorenza Re; Karen Felsmann; Wiebke Iffert; Michael Bauer; Hagir B Suliman; Claude A Piantadosi; Terry M Mayhew; Patrick Breen; Martin Stotz; Mervyn Singer
Journal:  Am J Respir Crit Care Med       Date:  2010-06-10       Impact factor: 21.405

Review 2.  Review article: carbon monoxide in gastrointestinal physiology and its potential in therapeutics.

Authors:  S J Gibbons; P-J Verhulst; A Bharucha; G Farrugia
Journal:  Aliment Pharmacol Ther       Date:  2013-08-28       Impact factor: 8.171

Review 3.  Pharmacological targets in the renal peritubular microenvironment: implications for therapy for sepsis-induced acute kidney injury.

Authors:  Philip R Mayeux; Lee Ann MacMillan-Crow
Journal:  Pharmacol Ther       Date:  2012-01-16       Impact factor: 12.310

4.  Activation of mitochondrial biogenesis by heme oxygenase-1-mediated NF-E2-related factor-2 induction rescues mice from lethal Staphylococcus aureus sepsis.

Authors:  Nancy Chou MacGarvey; Hagir B Suliman; Raquel R Bartz; Ping Fu; Crystal M Withers; Karen E Welty-Wolf; Claude A Piantadosi
Journal:  Am J Respir Crit Care Med       Date:  2012-02-03       Impact factor: 21.405

5.  Mitochondrial quality-control dysregulation in conditional HO-1-/- mice.

Authors:  Hagir B Suliman; Jeffrey E Keenan; Claude A Piantadosi
Journal:  JCI Insight       Date:  2017-02-09

Review 6.  Interactions of multiple gas-transducing systems: hallmarks and uncertainties of CO, NO, and H2S gas biology.

Authors:  Mayumi Kajimura; Ryo Fukuda; Ryon M Bateman; Takehiro Yamamoto; Makoto Suematsu
Journal:  Antioxid Redox Signal       Date:  2010-07-15       Impact factor: 8.401

7.  Mitochondria-targetable ratiometric fluorescence probe for carbon monoxide based on naphthalimide derivatives.

Authors:  Fangkai Du; Yunting Qu; Mengru Li; Xuecai Tan
Journal:  Anal Bioanal Chem       Date:  2021-01-06       Impact factor: 4.142

8.  Resveratrol induces hepatic mitochondrial biogenesis through the sequential activation of nitric oxide and carbon monoxide production.

Authors:  Seul-Ki Kim; Yeonsoo Joe; Min Zheng; Hyo Jeong Kim; Jae-Kyoung Yu; Gyeong Jae Cho; Ki Churl Chang; Hyoung Kyu Kim; Jin Han; Stefan W Ryter; Hun Taeg Chung
Journal:  Antioxid Redox Signal       Date:  2013-11-16       Impact factor: 8.401

Review 9.  Carbon monoxide in exhaled breath testing and therapeutics.

Authors:  Stefan W Ryter; Augustine M K Choi
Journal:  J Breath Res       Date:  2013-02-27       Impact factor: 3.262

Review 10.  Carbon monoxide in lung cell physiology and disease.

Authors:  Stefan W Ryter; Kevin C Ma; Augustine M K Choi
Journal:  Am J Physiol Cell Physiol       Date:  2017-11-08       Impact factor: 4.249

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