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MODELING CANCER: INTEGRATION OF 'OMICS' INFORMATION IN DYNAMIC SYSTEMS

机译:建模癌症:在动态系统中集成“ OMICS”信息

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摘要

The last 10 years have seen the rise of many technologies that produce an unprecedented amount of genome-scale data from many organisms. Although the research community has been successful in exploring these data, many challenges still persist. One of them is the effective integration of such data sets directly into approaches based on mathematical modeling of biological systems. Applications in cancer are a good example. The bridge between information and modeling in cancer can be achieved by two major types of complementary strategies. First, there is a bottom–up approach, in which data generates information about structure and relationship between components of a given system. In addition, there is a top–down approach, where cybernetic and systems–theoretical knowledge are used to create models that describe mechanisms and dynamics of the system. These approaches can also be linked to yield multi-scale models combining detailed mechanism and wide biological scope. Here we give an overall picture of this field and discuss possible strategies to approach the major challenges ahead.
机译:在过去的十年中,许多技术的兴起使许多生物产生了前所未有的基因组规模的数据。尽管研究界已经成功地探索了这些数据,但仍然存在许多挑战。其中之一是将这些数据集直接有效地集成到基于生物系统数学建模的方法中。在癌症中的应用就是一个很好的例子。癌症的信息和建模之间的桥梁可以通过两种主要的互补策略来实现。首先,有一种自下而上的方法,其中数据生成有关给定系统的结构和关系的信息。此外,还有一种自上而下的方法,其中控制论和系统理论知识用于创建描述系统机制和动态的模型。这些方法也可以链接到结合详细机制和广泛生物学范围的多尺度模型。在这里,我们对这一领域进行了全面介绍,并讨论了应对未来主要挑战的可能策略。

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