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New application of intelligent agents in sporadic amyotrophic lateral sclerosis identifies unexpected specific genetic background

机译:智能药物在散发性肌萎缩性侧索硬化症中的新应用确定了意想不到的特定遗传背景

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摘要

BackgroundFew genetic factors predisposing to the sporadic form of amyotrophic lateral sclerosis (ALS) have been identified, but the pathology itself seems to be a true multifactorial disease in which complex interactions between environmental and genetic susceptibility factors take place. The purpose of this study was to approach genetic data with an innovative statistical method such as artificial neural networks to identify a possible genetic background predisposing to the disease. A DNA multiarray panel was applied to genotype more than 60 polymorphisms within 35 genes selected from pathways of lipid and homocysteine metabolism, regulation of blood pressure, coagulation, inflammation, cellular adhesion and matrix integrity, in 54 sporadic ALS patients and 208 controls. Advanced intelligent systems based on novel coupling of artificial neural networks and evolutionary algorithms have been applied. The results obtained have been compared with those derived from the use of standard neural networks and classical statistical analysis
机译:背景很少发现易患肌萎缩性侧索硬化症(ALS)的散发性遗传因素,但病理学本身似乎是真正的多因素疾病,其中环境和遗传易感性因素之间发生复杂的相互作用。这项研究的目的是使用一种创新的统计方法(如人工神经网络)来处理遗传数据,以识别可能导致该疾病的遗传背景。在54位散发性ALS患者和208位对照中,将DNA多阵列面板应用于35种基因中的60种多态性的基因型,这些基因选自脂质和同型半胱氨酸代谢的途径,血压的调节,凝血,炎症,细胞粘附和基质完整性。基于人工神经网络和进化算法的新型耦合的先进智能系统已被应用。将获得的结果与使用标准神经网络和经典统计分析得出的结果进行了比较

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