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Published on: August 6, 2015
Cerebral activation of mitogen-activated protein kinases after circulatory arrest and low flow cardiopulmonary bypass
Alon S Aharon1, Matthew R Mulloy, Davis C Drinkwater
1Division of Cardiothoracic Surgery, St Louis University Health Sciences Center, 3635 Vista Avenue at Grand Boulevard, St Louis, MO 63110-0250, USA.
Objectives:
Mitogen-activated protein kinases (MAPK) are important intermediates in the signal transduction pathways involved in neuronal dysfunction following cerebral ischemia-reperfusion injury. One subfamily, extracellular regulated kinase 1/2, has been heavily implicated in the pathogenesis of post-ischemic neuronal damage. However, the contribution of extracellular regulated kinase 1/2 to neuronal damage following deep hypothermic circulatory arrest and low flow cardiopulmonary bypass is unknown. We attempted to correlate the extent of neuronal damage present following deep hypothermic circulatory arrest and low flow cardiopulmonary bypass with phosphorylated extracellular regulated kinase 1/2 expression in the cerebral vascular endothelium.
Methods:
Piglets underwent normal flow cardiopulmonary bypass (n=4) deep hypothermic circulatory arrest (n=6) and low flow cardiopulmonary bypass (n=5). Brains were harvested following 24 h of post-cardiopulmonary bypass recovery. Cerebral cortical watershed zones, hippocampus, basal ganglia, thalamus, cerebellum, mesencephalon, pons and medulla were evaluated using hematoxylin and eosin staining. A section of ischemic cortex was evaluated by immunohistochemistry with rabbit polyclonal antibodies against phosphorylated extracellular regulated kinase 1/2.
Results:
Compared to cardiopulmonary bypass controls, the deep hypothermic circulatory arrest and low flow cardiopulmonary bypass piglets exhibited diffuse ischemic changes with overlapping severity and distribution. Significant neuronal damage occurred in the frontal watershed zones and basal ganglia of the deep hypothermic circulatory arrest group (P<0.05). No detectable phosphorylated extracellular regulated kinase 1/2 immunoreactivity was found in the cardiopulmonary bypass controls; however, ERK 1/2 immunoreactivity was present in the cerebral vascular endothelium of the deep hypothermic circulatory arrest and low flow cardiopulmonary bypass groups.
Conclusions:
Our results indicate that phosphorylated extracellular regulated kinase 1/2 may play a prominent role in early cerebral ischemia-reperfusion injury and endothelial dysfunction. The pharmacologic inhibition of extracellular regulated kinase 1/2 represents a new and exciting opportunity for the modulation of cerebral tolerance to low flow cardiopulmonary bypass and deep hypothermic circulatory arrest.
Insights
Phosphorylated extracellular regulated kinase 1/2 (pERK 1/2) is present in piglets after deep hypothermic circulatory arrest and low flow cardiopulmonary bypass, indicating its role in cerebral ischemia-reperfusion injury.
Area of Science:
- Neuroscience
- Cardiovascular Surgery
- Cellular Biology
Background:
- Mitogen-activated protein kinases (MAPK) are key in neuronal signaling.
- Extracellular regulated kinase 1/2 (ERK 1/2) is implicated in post-ischemic neuronal damage.
- The role of ERK 1/2 in deep hypothermic circulatory arrest (DHCA) and low flow cardiopulmonary bypass (LF-CPB) is not well understood.
Purpose of the Study:
- To investigate the correlation between neuronal damage and phosphorylated ERK 1/2 (pERK 1/2) expression in cerebral vasculature.
- To assess the role of pERK 1/2 in cerebral ischemia-reperfusion injury during DHCA and LF-CPB.
Main Methods:
- Piglets underwent normal cardiopulmonary bypass (CPB), DHCA, or LF-CPB.
- Brains were analyzed for neuronal damage using hematoxylin and eosin staining.
- Immunohistochemistry was used to detect pERK 1/2 in ischemic cortex.
Main Results:
- DHCA and LF-CPB groups showed diffuse ischemic changes, with significant damage in watershed zones and basal ganglia.
- No pERK 1/2 was detected in normal CPB controls.
- pERK 1/2 immunoreactivity was found in the cerebral vascular endothelium of DHCA and LF-CPB groups.
Conclusions:
- pERK 1/2 may play a significant role in early cerebral ischemia-reperfusion injury and endothelial dysfunction.
- Pharmacologic inhibition of ERK 1/2 could enhance cerebral tolerance to DHCA and LF-CPB.
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