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首页> 外文期刊>Systems Journal, IEEE >Application of Computer Simulation and Genetic Algorithms to Gene Interactive Rules for Early Detection and Prevention of Cancer
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Application of Computer Simulation and Genetic Algorithms to Gene Interactive Rules for Early Detection and Prevention of Cancer

机译:计算机仿真和遗传算法在癌症早期发现和预防的基因交互规则中的应用

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摘要

Through cellular signaling networks, genes regulate the expression of other genes, which eventually result in stable phenotype structures such as tumor or nontumor cells. Often, tumor and nontumor cellular networks contain some similar cancer-causing genes, but due to corresponding gene regulatory network (GRN) in tumor networks, they end up forming cancerous cells, whereas in nontumor networks, they do not. If basic gene regulatory function rules could be estimated, potential for cancer could be detected before it actually happens. If these regulations could be modified, there is a potential to alter them in a way that evolution of cancerous cells could be avoided. This paper builds on the previous work where GRNs for hepatocellular cancer were estimated from microarray data and were used to detect the potential for cancer before it is actually developed. It applies a genetic-algorithm-based mathematical approach to determine the optimum change to induce to the nature of network regulatory rules to prevent formation of cancerous tumors. The approach presented here is based on the utilization of probabilistic Boolean networks on two models of GRNs: one for tumor and one for nontumor producing structures.
机译:通过细胞信号网络,基因调节其他基因的表达,最终导致稳定的表型结构,例如肿瘤或非肿瘤细胞。通常,肿瘤和非肿瘤细胞网络包含一些相似的致癌基因,但是由于肿瘤网络中相应的基因调控网络(GRN),它们最终形成癌细胞,而在非肿瘤网络中则没有。如果可以估计基本的基因调节功能规则,则可以在癌症真正发生之前就发现其潜在危险。如果可以修改这些规定,则有可能以避免癌细胞进化的方式改变它们。本文建立在以前的工作基础上,其中从微阵列数据估计了肝细胞癌的GRN,并在癌症实际发展之前用于检测其潜力。它采用基于遗传算法的数学方法来确定最佳变化,以诱导网络调节规则的性质,从而防止癌性肿瘤的形成。本文介绍的方法基于概率布尔网络在两种GRN模型上的利用:一种用于肿瘤,一种用于非肿瘤产生结构。

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