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Published on: May 4, 2015
Erythropoietin administration exerted neuroprotective effects against cardiac ischemia/reperfusion injury
Titikorn Chunchai1,2, Nattayaporn Apaijai1,2,3, Juthipong Benjanuwattra1,2
1Neurophysiology Unit, Cardiac Electrophysiology Research and Training Center, Faculty of Medicine, Chiang Mai University, Chiang Mai, 50200, Thailand.
Insights
Erythropoietin (EPO) protects the brain from damage caused by acute myocardial infarction (AMI). Pretreatment with EPO before cardiac ischemia offers the greatest neuroprotection by reducing oxidative stress and improving brain function.
Area of Science:
- Cardiology
- Neurology
- Pharmacology
Background:
- Acute myocardial infarction (AMI) causes cardiac dysfunction and secondary brain pathology.
- Erythropoietin (EPO) demonstrates neuroprotective effects in cerebral ischemic/reperfusion (I/R) injury.
- The impact of EPO on brain damage following cardiac I/R is largely uninvestigated.
Purpose of the Study:
- To investigate the neuroprotective potential of EPO against cardiac I/R-induced brain damage.
- To determine if EPO administration attenuates oxidative stress, microglial activation, and neuronal cell death in the brain.
- To evaluate EPO's effect on hippocampal plasticity and function following cardiac I/R.
Main Methods:
- Male Wistar rats underwent sham or cardiac I/R procedures.
- Cardiac I/R rats were divided into vehicle, EPO pretreatment, EPO during ischemia, and EPO during reperfusion groups.
- Neuroprotection was assessed by measuring left ventricle function, oxidative stress, brain mitochondrial function, microglial morphology, hippocampal necroptosis, apoptosis, and plasticity.
Main Results:
- EPO administration demonstrated significant anti-oxidative, anti-inflammatory, and anti-apoptotic effects on the brain post-cardiac I/R.
- EPO pretreatment before ischemia yielded the most substantial neuroprotection, attenuating cardiac dysfunction and brain damage.
- Key benefits included reduced peripheral and brain oxidative stress, improved microglial morphology, preserved mitochondrial function, and decreased neuronal cell death.
Conclusions:
- EPO exerts significant neuroprotective effects against cardiac I/R-induced brain injury.
- EPO pretreatment is the most effective strategy for mitigating brain pathology following AMI.
- EPO administration offers a promising therapeutic approach for managing cardiac I/R-related neurological complications.
Abstract:
Acute myocardial infarction (AMI) leads to cardiac dysfunction and also causes brain dysfunction and pathology. The neuroprotective effects of erythropoietin (EPO), the hormone controlling the production of red blood cells, have been shown in case of cerebral ischemic/reperfusion (I/R) injury. However, the effects of EPO on the brain pathologies induced by cardiac I/R injury have not been investigated. We hypothesized that the administration of EPO attenuates brain damage caused by cardiac I/R injury through decreasing peripheral and brain oxidative stress, preserving microglial morphology, attenuating hippocampal necroptosis, and decreasing hippocampal apoptosis, and hippocampal dysplasticity. Male Wistar rats (n = 38) were divided into two groups, sham (n = 6) and cardiac I/R (n = 32). All rats being subjected to the cardiac I/R operation were randomly divided into 4 subgroups (n = 8/group): vehicle, EPO pretreatment, EPO given during ischemia, and EPO given at the onset of reperfusion. The EPO was given at a dosage of 5000 units/kg via intravenous injection. Left ventricle function, oxidative stress, brain mitochondrial function, microglial morphology, hippocampal necroptosis, hippocampal apoptosis, and hippocampal plasticity were measured. EPO administration exerted beneficial anti-oxidative, anti-inflammatory, and anti-apoptotic effects on the brain against cardiac I/R. Giving EPO before cardiac ischemia conferred the greatest neuroprotection against cardiac I/R injury through the attenuation of LV dysfunction, decrease in peripheral and brain oxidative stress, and the attenuation of microglial activation, brain mitochondrial dysfunction, apoptosis, and necroptosis, leading to the improvement of hippocampal dysplasticity under cardiac I/R conditions. EPO pretreatment provided the greatest benefits on brain pathology induced by cardiac I/R.
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