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Physical Exercise Induces Specific Adaptations Resulting in Reduced Organ Injury and Mortality During Severe Polymicrobial Sepsis

医学 败血症 内科学 溶血磷脂酰胆碱 脂质运载蛋白 炎症 免疫学 胃肠病学 磷脂酰胆碱 生物 遗传学 磷脂
作者
Maik Soßdorf,Jacqueline Fischer,Stefan Meyer,Katja Dahlke,Bianka Wissuwa,C. Seidel,Andrea Schrepper,Clemens L. Bockmeyer,Amelie Lupp,Sophie Neugebauer,Diana Schmerler,Jürgen Rödel,Ralf A. Claus,Gordon P Otto
出处
期刊:Critical Care Medicine [Ovid Technologies (Wolters Kluwer)]
卷期号:41 (10): e246-e255 被引量:37
标识
DOI:10.1097/ccm.0b013e31828a2ae3
摘要

Objectives: High physical activity levels are associated with wide-ranging health benefits, disease prevention, and longevity. In the present study, we examined the impact of regular physical exercise on the severity of organ injury and survival probability, as well as characteristics of the systemic immune and metabolic response during severe polymicrobial sepsis. Design: Animal study. Setting: University laboratory. Subjects: Male C57BL/6N mice. Interventions: Mice were trained for 6 weeks by treadmill and voluntary wheel running or housed normally. Polymicrobial sepsis in mice was induced by injection of fecal slurry. Subsequently, mice were randomized into the following groups: healthy controls, 6 hours postsepsis, and 24 hours postsepsis. Measurements and Main Results: Blood and organ samples were collected and investigated by measuring clinical chemistry variables, cytokines, plasma metabolites, and bacterial clearance. Organ morphology and damage were characterized by histological staining. Physical exercise improved survival and the ability of bacterial clearance in blood and organs. The release of pro- and anti-inflammatory cytokines, including interleukin-6 and interleukin-10, was diminished in trained compared to untrained mice during sepsis. The sepsis-associated acute kidney tubular damage was less pronounced in pretrained animals. By metabolic profiling and regression analysis, we detected lysophosphatidylcholine 14:0, tryptophan, as well as pimelylcarnitine linked with levels of neutrophil gelatinase-associated lipocalin representing acute tubular injury (corrected R2 = 0.910; p < 0.001). We identified plasma lysophosphatidylcholine 16:0, lysophosphatidylcholine 17:0, and lysophosphatidylcholine 18:0 as significant metabolites discriminating between trained and untrained mice during sepsis. Conclusions: Regular physical exercise reduces sepsis-associated acute kidney injury and death. As a specific mechanism of exercise-induced adaptation, we identified various lysophosphatidylcholines that might function as surrogate for improved outcome in sepsis.

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