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使用决策树分析对信号响应级联进行建模。

Modeling of signal-response cascades using decision tree analysis.

作者信息

Hautaniemi Sampsa, Kharait Sourabh, Iwabu Akihiro, Wells Alan, Lauffenburger Douglas A

机构信息

Biological Engineering Division, Massachusetts Institute of Technology, Cambridge, 02139, USA.

出版信息

Bioinformatics. 2005 May 1;21(9):2027-35. doi: 10.1093/bioinformatics/bti278.

Abstract

MOTIVATION

Signal transduction cascades governing cell functional responses to stimulatory cues play crucial roles in cell regulatory systems and represent promising therapeutic targets for complex human diseases. however, mathematical analysis of how cell responses are governed by signaling activities is challenging due to their multivariate and non-linear nature. diverse computational methods are potentially available, but most are ineffective for protein-level data that is limited in extent and replication.

RESULTS

We apply a decision tree approach to analyze the relationship of cell functional response to signaling activity across a spectrum of stimulatory cues. as a specific example, we studied five intracellular signals influencing fibroblast migration under eight conditions: four substratum fibronectin levels and presence versus absence of epidermal growth factor. we propose techniques for preprocessing and extending the experimental measurement set via interpolative modeling in order to gain statistical reliability. for this specific case study, our approach has 70% overall classification accuracy and the decision tree model reveals insights concerning the combined roles of the various signaling activities in governing cell migration speed. we conclude that decision tree methodology may facilitate elucidation of signal-response cascade relationships and generate experimentally testable predictions, which can be used as directions for future experiments.

摘要

动机

控制细胞对刺激信号功能反应的信号转导级联在细胞调节系统中起着关键作用,并且是复杂人类疾病有前景的治疗靶点。然而,由于信号活动的多变量和非线性性质,对细胞反应如何由信号活动控制进行数学分析具有挑战性。有多种计算方法可供选择,但大多数方法对于范围和重复性有限的蛋白质水平数据效果不佳。

结果

我们应用决策树方法来分析在一系列刺激信号下细胞功能反应与信号活动之间的关系。作为一个具体例子,我们研究了在八种条件下影响成纤维细胞迁移的五种细胞内信号:四种基质纤连蛋白水平以及有无表皮生长因子。我们提出了通过插值建模对实验测量集进行预处理和扩展的技术,以提高统计可靠性。对于这个具体的案例研究,我们的方法总体分类准确率为70%,并且决策树模型揭示了各种信号活动在控制细胞迁移速度中的联合作用的相关见解。我们得出结论,决策树方法可能有助于阐明信号 - 反应级联关系并生成可实验验证的预测,这些预测可作为未来实验的指导方向。

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