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A support vector machine approach to identification of proteins relevant to learning in a mouse model of Down Syndrome

机译:支持向量机方法,用于识别唐氏综合症小鼠模型中与学习相关的蛋白质

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Down Syndrome is a common disorder which causes intellectual disability among other symptoms. To date, no treatment exists for the learning difficulties associated with Down Syndrome. However, the pharmaceutical drug memantine has been shown to improve learning ability in a Down Syndrome model of mice (Ts65Dn) exposed to Context Fear Conditioning (CFC), an existing technique used in determining the extent of learning capability of mice. While the effect of memantine on learning capability in Ts65Dn mice is significant, the biological mechanism responsible for restoration of learning capability by memantine is poorly understood. One possible way to characterize this mechanism is by analyzing the neural protein profile data of normal and Down Syndrome mice with and without memantine treatment. In this work, we use a series of linear support vector machines to model the differential expression of 77 proteins obtained from the nuclear cortex of normal and Ts65Dn mice, with and without memantine treatment and with and without CFC stimulation. We use feature selection by weight threshold to select those proteins which play a significant role in characterizing each model. Per our findings, these subsets of proteins can be used to build more accurate classification models of the data than those subsets chosen using unsupervised learning or statistical analyses in previous studies. We recommend that the subsets of proteins selected using our proposed method be utilized in further biological study aiming to understand the effects of memantine on learning restoration.
机译:唐氏综合症是一种常见的疾病,除其他症状外,还会导致智力残疾。迄今为止,还没有针对唐氏综合症相关的学习困难的治疗方法。然而,已显示出药物美金刚在暴露于情境恐惧条件(CFC)的小鼠唐氏综合症模型(Ts65Dn)中可提高学习能力,这是一种用于确定小鼠学习能力程度的现有技术。尽管美金刚对Ts65Dn小鼠的学习能力有显着影响,但对美金刚恢复学习能力的生物学机制了解甚少。表征这种机制的一种可能方法是通过分析接受和不接受美金刚治疗的正常和唐氏综合症小鼠的神经蛋白谱数据。在这项工作中,我们使用一系列的线性支持向量机来模拟从正常和Ts65Dn小鼠的皮层中获得的77种蛋白质的差异表达,该蛋白质经过美金刚治疗和无CFC刺激。我们使用按重量阈值进行特征选择来选择那些在表征每个模型中起重要作用的蛋白质。根据我们的发现,这些蛋白质子集可用于建立比以前研究中使用无监督学习或统计分析选择的那些子集更准确的数据分类模型。我们建议将使用我们提出的方法选择的蛋白质子集用于进一步的生物学研究,旨在了解美金刚对学习恢复的影响。

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