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Neural Networks Modelling after Myocardial Infarction in Rats

机译:大鼠心肌梗死后的神经网络建模

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Cardiac function is reduced after acute myocardial infarction due to myocardial injury and to changes in the viable non-ischemic myocardium, a process known as cardiac remodeling. Current treatment of patients with acute myocardial infarction (AMI) reduces infarct size, preserves left ventricular function, and improves survival. However, it does not prevent remodeling which leads to heart failure. The aim of the present study was to model the echocardiographically estimated data with respect to the surgically collected data using Neural Networks. In particular, we attempted to analyze the relationship between cardiac remodeling variables obtained from echo and the infarct variables obtained from surgical data using neural networks. Towards that purpose, 199 rats were separated in two groups. The first group was subjected to coronary artery ligation, while the second underwent a sham operation. Echocardiography was used for rat monitoring. Scar weight and area were estimated after surgical incision. It appeared that several factors could be modelled with neural networks. Such modeling approaches could be developed to enable the simulation of the pathophysiological process after an Acute Myocardial Infarction (AMI) and predict with accuracy the effects of novel or current treatments that act via modulation of tissue injury, Left Ventricular dilation, geometry and hypertrophy.
机译:在急性心肌梗塞后,由于心肌损伤和存活的非缺血性心肌的变化,心脏功能降低,这一过程称为心脏重塑。当前对急性心肌梗塞(AMI)患者的治疗可缩小梗塞面积,保留左心室功能并提高生存率。但是,它不能防止导致心力衰竭的重塑。本研究的目的是相对于使用神经网络对手术收集的数据进行超声心动图估计的数据建模。特别是,我们尝试使用神经网络分析从回声获得的心脏重塑变量与从手术数据获得的梗塞变量之间的关系。为此,将199只大鼠分为两组。第一组进行冠状动脉结扎,而第二组进行假手术。超声心动图用于大鼠监测。手术切口后,估计疤痕的重量和面积。似乎可以用神经网络对几个因素进行建模。可以开发这种建模方法以模拟急性心肌梗塞(AMI)后的病理生理过程,并准确预测通过调节组织损伤,左心室扩张,几何形状和肥大而起作用的新疗法或当前疗法的效果。

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