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Dynamical network biomarkers for identifying critical transitions and their driving networks of biologic processes

机译:用于识别关键转变及其生物过程驱动网络的动态网络生物标志物

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摘要

Non-smooth or even abrupt state changes exist during many biological processes, e.g., cell differentiation processes, proliferation processes, or even disease deterioration processes. Such dynamics generally signals the emergence of critical transition phenomena, which result in drastic changes of system states or eventually qualitative changes of phenotypes. Hence, it is of great importance to detect such transitions and further reveal their molecular mechanisms at network level. Here, we review the recent advances on dynamical network biomarkers (DNBs) as well as the related theoretical foundation, which can identify not only early signals of the critical transitions but also their leading networks, which drive the whole system to initiate such transitions. In order to demonstrate the effectiveness of this novel approach, examples of complex diseases are also provided to detect pre-disease stage, for which traditional methods or biomarkers failed.
机译:在许多生物学过程,例如细胞分化过程,增殖过程,甚至疾病恶化过程中,存在不平滑甚至突变的状态变化。这种动力学通常预示着临界过渡现象的出现,这会导致系统状态的急剧变化或最终表型的质变。因此,检测这种过渡并进一步揭示其在网络水平上的分子机制非常重要。在这里,我们回顾了动态网络生物标记(DNB)的最新进展以及相关的理论基础,这些基础不仅可以识别关键转变的早期信号,而且可以识别驱动整个系统启动此类转变的主导网络。为了证明这种新方法的有效性,还提供了一些复杂疾病的例子来检测疾病的前期阶段,而传统方法或生物标记物在此阶段均失败了。

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  • 来源
    《Quantitative biology》 |2013年第2期|105-114|共10页
  • 作者单位

    Department of Mathematics, South China University of Technology, Guangzhou 510640, China;

    Collaborative Research Center for Innovative Mathematical Modeling, Institute of Industrial Science, University of Tokyo, Tokyo 153-8505, Japan;

    Collaborative Research Center for Innovative Mathematical Modeling, Institute of Industrial Science, University of Tokyo, Tokyo 153-8505, Japan,Key Laboratory of Systems Biology, SIBS-Novo Nordisk Translational Research Centre for PreDiabetes, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200031, China;

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