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Fixed Volume or Fixed Pressure: A Murine Model of Hemorrhagic Shock
Published on: June 6, 2011
Oxidative stress may be involved in distant organ failure in tourniquet shock model mice
Rie Nishikata1, Naho Kato1, Kouichi Hiraiwa1
1Department of Legal Medicine, Fukushima Medical University, School of Medicine, Hikarigaoka 1, Fukushima 960-1295, Japan.
Abstract:
Crush syndrome is characterized by prolonged shock resulting from extensive muscle damage and multiple organ failure. However, the pathogenesis of multiple organ failure has not yet been completely elucidated. Therefore, we investigated the molecular biological and histopathological aspects of distant organ injury in crush syndrome by using tourniquet shock model mice. DNA microarray analysis of the soleus muscle showed an increase in the mRNA levels of Cox-2, Hsp70, c-fos, and IL-6, at 3h after ischemia/reperfusion injury at the lower extremity. In vivo staining with hematoxylin and eosin (HE) showed edema and degeneration in the soleus muscle, but no change in the distant organs. Immunohistological staining of the HSP70 protein revealed nuclear translocation in the soleus muscle, kidney, liver, and lung. The c-fos mRNA levels were elevated in the soleus muscle, kidney, and liver, displaying nuclear translocation of c-FOS protein. Terminal deoxynucleotidyl transferase dUTP nick-end labeling (TUNEL) analysis suggested the involvement of apoptosis in ischemia/reperfusion injury in the soleus muscle. Apoptotic cells were not found in greater quantities in the kidney. Oxidative stress, as determined using a free radical elective evaluator (d-ROM test), markedly increased after ischemia/reperfusion injury. Therefore, examination of immunohistological changes and determination of oxidative stress are proposed to be useful in evaluating the extent of tourniquet shock, even before changes are observed by HE staining.
Insights
Crush syndrome involves muscle damage and organ failure. This study in mice reveals early molecular changes like HSP70 and c-FOS in distant organs, indicating potential for early diagnosis of tourniquet shock.
Area of Science:
- Molecular Biology
- Pathology
- Biochemistry
Background:
- Crush syndrome causes prolonged shock, extensive muscle damage, and multiple organ failure.
- The exact pathogenesis of multiple organ failure in crush syndrome remains unclear.
Purpose of the Study:
- To investigate molecular and histopathological aspects of distant organ injury in a mouse model of crush syndrome.
- To identify early biomarkers for tourniquet shock.
Main Methods:
- Utilized a tourniquet shock model in mice.
- Performed DNA microarray analysis, hematoxylin and eosin (HE) staining, immunohistological staining (HSP70, c-FOS), TUNEL assay, and oxidative stress evaluation (d-ROM test).
Main Results:
- Increased mRNA levels of Cox-2, Hsp70, c-fos, and IL-6 were observed in the soleus muscle post-ischemia/reperfusion.
- HSP70 and c-FOS protein showed nuclear translocation in distant organs (kidney, liver, lung).
- Oxidative stress significantly increased, suggesting its role in injury.
Conclusions:
- Early molecular changes, including HSP70 and c-FOS translocation and increased oxidative stress, occur in distant organs during tourniquet shock.
- Immunohistological examination and oxidative stress assessment can evaluate tourniquet shock extent before HE staining reveals visible damage.

