Sepsis, pyruvate, and mitochondria energy supply chain shortage

Author:

McCall Charles E1,Zhu Xuewei1,Zabalawi Manal1,Long David1,Quinn Matthew A2,Yoza Barbara K3,Stacpoole Peter W4,Vachharajani Vidula5

Affiliation:

1. Department of Medicine, Wake Forest School of Medicine , Winston Salem, NC, USA

2. Department of Pathology – Comparative Medicine, Wake Forest School of Medicine , Winston Salem, NC, USA

3. Department of Surgery, Wake Forest School of Medicine , Winston Salem, NC, USA

4. Department of Medicine and Biochemistry, University of Florida Medical School , Gainesville, Florida, USA

5. Department of Critical Care Medicine, Cleveland Clinic Lerner College of Medicine of CWRU , Cleveland, Ohio, USA

Abstract

Abstract Balancing high energy-consuming danger resistance and low energy supply of disease tolerance is a universal survival principle that often fails during sepsis. Our research supports the concept that sepsis phosphorylates and deactivates mitochondrial pyruvate dehydrogenase complex control over the tricarboxylic cycle and the electron transport chain. StimulatIng mitochondrial energetics in septic mice and human sepsis cell models can be achieved by inhibiting pyruvate dehydrogenase kinases with the pyruvate structural analog dichloroacetate. Stimulating the pyruvate dehydrogenase complex by dichloroacetate reverses a disruption in the tricarboxylic cycle that induces itaconate, a key mediator of the disease tolerance pathway. Dichloroacetate treatment increases mitochondrial respiration and ATP synthesis, decreases oxidant stress, overcomes metabolic paralysis, regenerates tissue, organ, and innate and adaptive immune cells, and doubles the survival rate in a murine model of sepsis.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Immunology,Immunology and Allergy

Reference72 articles.

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4. Disease tolerance as a defense strategy;Medzhitov;Science,2012

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