通过平行综合实验和多元分析预测随机模型参数变化的影响

Infinity Pub Date : 2010-09-30 DOI:10.1109/PDMC-HIBI.2010.22
M. Forlin, T. Mazza, D. Prandi
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引用次数: 5

摘要

通常研究人员需要许多实验来验证生物系统对刺激的反应。然而,试剂和设备的高成本以及进行实验所需的时间有时是失败的主要原因。在这方面,信息技术提供了有价值的帮助:建模和仿真是在计算设备上执行虚拟实验的数学工具。通过合成实验,研究人员可以对生物系统的参数空间进行采样,并获得数百种潜在结果,准备重复使用以设计和进行更有针对性的湿实验室实验。这样做的一个不可忽视的成就是大量节省了资源和时间。在本文中,我们提出了一个结合高性能计算和统计的基于插件的软件原型。我们的框架依赖于并行计算来运行大量的合成实验。然后使用多变量分析来解释和验证结果。该软件在两个著名的振荡模型上进行了测试:捕食者-猎物(Lotka-Volterra)和Repressilator。
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Predicting the Effects of Parameters Changes in Stochastic Models through Parallel Synthetic Experiments and Multivariate Analysis
Usually researchers require many experiments to verify how biological systems respond to stimuli. However, the high cost of reagents and facilities as well as the time required to carry out experiments are sometimes the main cause of failure. In this regards, Information Technology offers a valuable help: modeling and simulation are mathematical tools to execute virtual experiments on computing devices. Through synthetic experimentation, researchers can sample the parameters space of a biological system and obtain hundreds of potential results, ready to be reused to design and conduct more targeted wet-lab experiments. A non negligible achievement of this is the enormous saving of resources and time. In this paper, we present a plug-in-based software prototype that combines high performance computing and statistics. Our framework relies on parallel computing to run large numbers of synthetic experiments. Multivariate analysis is then used to interpret and validate results. The software is tested on two well-known oscillatory models: Predator-Prey (Lotka-Volterra) and Repressilator.
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来源期刊
CiteScore
2.30
自引率
0.00%
发文量
26
审稿时长
10 weeks
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