Identification and Analysis of Alzheimer's Candidate Genes by an Amplitude Deviation Algorithm.

Chaoyang Pang, Hualan Yang, Benqiong Hu, Shipeng Wang, Meixia Chen, David S Cohen, Hannah S Chen, Juliet T Jarrell, Kristy A Carpenter, Eric R Rosin, Xudong Huang
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引用次数: 13

Abstract

Background: Alzheimer's disease (AD) is the most common form of senile dementia. However, its pathological mechanisms are not fully understood. In order to comprehend AD pathological mechanisms, researchers employed AD-related DNA microarray data and diverse computational algorithms. More efficient computational algorithms are needed to process DNA microarray data for identifying AD-related candidate genes.

Methods: In this paper, we propose a specific algorithm that is based on the following observation: When an acrobat walks along a steel-wire, his/her body must have some swing; if the swing can be controlled, then the acrobat can maintain the body balance. Otherwise, the acrobat will fall. Based on this simple idea, we have designed a simple, yet practical, algorithm termed as the Amplitude Deviation Algorithm (ADA). Deviation, overall deviation, deviation amplitude, and 3δ are introduced to characterize ADA.

Results: 52 candidate genes for AD have been identified via ADA. The implications for some of the AD candidate genes in AD pathogenesis have been discussed.

Conclusions: Through the analysis of these AD candidate genes, we believe that AD pathogenesis may be related to the abnormality of signal transduction (AGTR1 and PTAFR), the decrease in protein transport capacity (COL5A2 (221729_at), COL5A2 (221730_at), COL4A1), the impairment of axon repair (CNR1), and the intracellular calcium dyshomeostasis (CACNB2, CACNA1E). However, their potential implication for AD pathology should be further validated by wet lab experiments as they were only identified by computation using ADA.

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基于振幅偏差算法的阿尔茨海默病候选基因识别与分析。
背景:阿尔茨海默病(AD)是最常见的老年性痴呆。然而,其病理机制尚不完全清楚。为了了解AD的病理机制,研究人员使用了AD相关的DNA微阵列数据和多种计算算法。为了识别ad相关的候选基因,需要更有效的计算算法来处理DNA微阵列数据。方法:本文基于以下观察,提出了一种具体的算法:杂技演员在钢丝上行走时,其身体必须有一定的摆动;如果能控制摇摆,那么杂技演员就能保持身体平衡。否则,杂技演员就会摔倒。基于这个简单的想法,我们设计了一个简单而实用的算法,称为幅度偏差算法(ADA)。引入偏差、总偏差、偏差幅度和3δ来表征ADA。结果:通过ADA鉴定出52个AD候选基因。本文讨论了一些AD候选基因在AD发病机制中的意义。结论:通过对这些AD候选基因的分析,我们认为AD的发病机制可能与信号转导异常(AGTR1、PTAFR)、蛋白转运能力下降(COL5A2 (221729_at)、COL5A2 (221730_at)、COL4A1)、轴突修复功能受损(CNR1)、细胞内钙平衡失调(CACNB2、CACNA1E)有关。然而,它们对阿尔茨海默病病理的潜在意义应该通过湿实验室实验进一步验证,因为它们只是通过ADA计算确定的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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