THD-Tricluster method on gene expression data of multiple sclerosis patients receiving interferon-beta therapy

A. Rachma, S. Soemartojo, T. Siswantining
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引用次数: 1

Abstract

THD-Tricluster method is a triclustering analysis with a biclustering-based approach. The THD-Tricluster method uses the Shifting-and-Scaling Similarity (SSSim) value to form a bicluster first and shows it by forming a tricluster. The SSSim value uses Shifting-and-Scaling Correlation to use an interface with shifting and scaling patterns as well as intertemporal coherence and compares it with the threshold value. THD-Tricluster method was performed on treatment response data to interferon-beta therapy in multiple sclerosis patients. The optimal scenario is a scenario with a coverage value scenario that uses the highest threshold value. In this scenario, there are two types of tricluster, namely the tricluster which has a collection of genes in responsive patients and patients who are not responsive to therapy. The differences collection of genes in both tricluster can be used by medical professionals in the development of interferon-beta therapy treatments to create a therapy response on multiple sclerosis disease.
thd -三聚体法对接受干扰素治疗的多发性硬化症患者基因表达数据的研究
thd -三聚类方法是一种基于双聚类的三聚类分析方法。THD-Tricluster方法首先使用偏移和缩放相似度(SSSim)值形成双聚类,并通过形成三聚类来表示。SSSim值使用移动和缩放关联来使用具有移动和缩放模式以及跨期相干性的接口,并将其与阈值进行比较。对多发性硬化症患者对干扰素治疗的疗效资料进行thd -三聚氰胺法分析。最优的场景是使用最高阈值的覆盖值场景。在这种情况下,有两种类型的三聚体,即在反应性患者中具有基因集合的三聚体和对治疗无反应的患者。这两种三聚群基因的差异收集可以被医学专业人员用于开发干扰素- β治疗方法,以产生对多发性硬化症的治疗反应。
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