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A Novel Method to Verify Multilevel Computational Models of Biological Systems Using Multiscale Spatio-Temporal Meta Model Checking

机译:多尺度时空元模型检查验证生物系统多级计算模型的新方法

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摘要

Insights gained from multilevel computational models of biological systems can be translated into real-life applications only if the model correctness has been verified first. One of the most frequently employed in silico techniques for computational model verification is model checking. Traditional model checking approaches only consider the evolution of numeric values, such as concentrations, over time and are appropriate for computational models of small scale systems (e.g. intracellular networks). However for gaining a systems level understanding of how biological organisms function it is essential to consider more complex large scale biological systems (e.g. organs). Verifying computational models of such systems requires capturing both how numeric values and properties of (emergent) spatial structures (e.g. area of multicellular population) change over time and across multiple levels of organization, which are not considered by existing model checking approaches. To address this limitation we have developed a novel approximate probabilistic multiscale spatio-temporal meta model checking methodology for verifying multilevel computational models relative to specifications describing the desired/expected system behaviour. The methodology is generic and supports computational models encoded using various high-level modelling formalisms because it is defined relative to time series data and not the models used to generate it. In addition, the methodology can be automatically adapted to case study specific types of spatial structures and properties using the spatio-temporal meta model checking concept. To automate the computational model verification process we have implemented the model checking approach in the software tool Mule (). Its applicability is illustrated against four systems biology computational models previously published in the literature encoding the rat cardiovascular system dynamics, the uterine contractions of labour, the Xenopus laevis cell cycle and the acute inflammation of the gut and lung. Our methodology and software will enable computational biologists to efficiently develop reliable multilevel computational models of biological systems.
机译:只有先验证了模型的正确性,才能从生物系统的多级计算模型中获得的见解可以转化为现实应用。用于模型验证的计算机技术中最常用的一种是模型检查。传统的模型检查方法仅考虑数值(例如浓度)随时间的演变,并且适用于小型系统(例如细胞内网络)的计算模型。但是,为了在系统层面上了解生物有机体的功能,必须考虑更复杂的大规模生物系统(例如器官)。验证此类系统的计算模型需要捕获(紧急)空间结构的数值和属性(例如多细胞种群的面积)如何随时间推移以及跨组织的多个层次而变化,而现有模型检查方法并未考虑这些变化。为了解决这个限制,我们已经开发了一种新颖的近似概率多尺度时空元模型检查方法,用于相对于描述期望/期望系统行为的规范来验证多级计算模型。该方法是通用的,它支持使用各种高级建模形式进行编码的计算模型,因为它是相对于时间序列数据而不是相对于用于生成数据的模型而定义的。此外,该方法可以使用时空元模型检查概念自动适应案例研究特定类型的空间结构和属性。为了使计算模型验证过程自动化,我们在软件工具Mule()中实现了模型检查方法。针对先前在文献中公开的编码大鼠心血管系统动力学,子宫的子宫收缩,非洲爪蟾细胞周期以及肠道和肺部急性炎症的四种系统生物学计算模型,说明了其适用性。我们的方法和软件将使计算生物学家能够有效地开发生物系统的可靠多级计算模型。

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  • 作者

    Ovidiu Pârvu; David Gilbert;

  • 作者单位
  • 年(卷),期 -1(11),5
  • 年度 -1
  • 页码 e0154847
  • 总页数 43
  • 原文格式 PDF
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