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Published on: April 25, 2014
Myocardial alterations following traumatic hemorrhagic injury
Rebecca Simpson1, Banjerd Praditsuktavorn, Johanna Wall
1From the Centre for Trauma Sciences, Blizard Institute (R.S., B.P., J.W., C.T., J.L.T., K.B.), Metabolomics Core Facility, Barts Cancer Institute (V.M.), Centre for Translational Medicine and Therapeutics, William Harvey Research Institute (C.T.), Barts and the London School of Medicine and Dentistry, Queen Mary University, London, United Kingdom.
Insights
Traumatic hemorrhagic shock causes cardiac dysfunction via oxidative stress and altered metabolism. This study identifies key metabolic changes, offering potential targets for new cardioprotective therapies to reduce trauma mortality.
Area of Science:
- Cardiovascular Research
- Trauma Medicine
- Metabolomics
Background:
- Cardiac dysfunction (CD) is a major cause of organ failure and mortality after trauma.
- The exact pathways linking inflammation to CD after trauma are not fully understood.
- Current treatments for trauma-induced CD are lacking.
Purpose of the Study:
- To investigate the role of myocardial oxidative stress in CD after traumatic hemorrhagic injury.
- To identify the associated metabolomic profile changes in the myocardium.
Main Methods:
- Analysis of ex vivo cardiac tissue from a murine model of pressure-controlled trauma hemorrhagic shock (THS).
- Immunohistochemistry used to assess oxidative stress marker 8-hydroxy-2'-deoxyguanosine.
- Liquid chromatography-mass spectrometry (LC-MS) performed for metabolomic profiling.
Main Results:
- THS injury significantly increased myocardial 8-hydroxy-2'-deoxyguanosine expression compared to controls.
- Trauma hemorrhagic shock led to increased lysine and decreased aconitate and glutamate levels in the myocardium.
- These changes indicate the activation of catabolic metabolism and oxidative stress.
Conclusions:
- Acute oxidative stress and altered cardiac energy metabolism occur after traumatic hemorrhage.
- Findings provide insights into the link between inflammation, cardiac contractility impairment, and CD.
- Identified metabolic pathways may serve as targets for novel cardioprotective therapeutics to decrease trauma mortality.
Background:
Cardiac dysfunction (CD) has emerged as a key contributor to delayed organ failure and late mortality in patients surviving the initial traumatic hemorrhagic response. Inflammatory processes are implicated in the initial stages of this CD; however, downstream pathways leading to a characteristic rapid fall in stroke volume and cardiac output are not yet fully defined. Currently, no cardioprotective treatments are available. We investigated the role of myocardial oxidative stress in the pathogenesis of CD associated to traumatic hemorrhagic injury, and its related metabolomic profile.
Methods:
Ex vivo tissue from a 3-hour murine model of pressure-controlled trauma hemorrhagic shock (THS) was analyzed. Animals were randomized to echocardiography-guided crystalloid fluid resuscitation or a control group (sham: cannulation and anesthesia only, or naïve: no intervention). Trauma hemorrhagic shock and naïve samples were assessed by immunohistochemistry for nuclear 8-hydroxy-2'-deoxyguanosine expression as a marker of oxidative stress. Metabolomic analysis of THS and sham group tissue was performed by LC-MS.
Results:
8-Hydroxy-2'-deoxyguanosine expression across the myocardium was significantly higher following THS injury compared to naïve group (33.01 ± 14.40% vs. 15.08 ± 3.96%, p < 0.05). Trauma hemorrhagic shock injury significantly increased lysine ( p = 0.022), and decreased aconitate ( p = 0.016) and glutamate ( p = 0.047) in the myocardium, indicating activation of a catabolic metabolism and oxidative stress response.
Conclusion:
We confirm the acute development of oxidative stress lesions and altered cardiac energy metabolism following traumatic hemorrhage injury, providing insight into the relationship between inflammatory damage and impaired cardiac contractility. These findings may provide targets for development of novel cardioprotective therapeutics aiming to decrease late mortality from trauma.
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