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Systems biology approaches to understanding stem cell fate choice

机译:系统生物学方法了解干细胞命运选择

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Stem cells have the capability to self-renew and maintain their undifferentiated state or to differentiate into one or more specialised cell types. Stem cell expansion and manipulation ex vivo is a promising approach for engineering cell replacement therapies, and endogenous stem cells represent potential drugable targets for tissue repair. Before we can harness stem cells' therapeutic potential, we must first understand the intracellular mechanisms controlling their fate choices. These mechanisms involve complex signal transduction and gene regulation networks that feature, for example, intricate feed-forward loops, feedback loops and cross-talk between multiple signalling pathways. Systems biology applies computational and experimental approaches to investigate the emergent behaviour of collections of molecules and strives to explain how these numerous components interact to regulate molecular, cellular and organismal behaviour. Here we review systems biology, and in particular computational, efforts to understand the intracellular mechanisms of stem cell fate choice. We first discuss deterministic and stochastic models that synthesise molecular knowledge into mathematical formalism, enable simulation of important system behaviours and stimulate further experimentation. In addition, statistical analyses such as Bayesian networks and principal components analysis (PCA)/partial least squares (PLS) regression can distill large datasets into more readily managed networks and principal components that provide insights into the critical aspects and components of regulatory networks. Collectively, integrating modelling with experimentation has strong potential for enabling a deeper understanding of stem cell fate choice and thereby aiding the development of therapies to harness stem cells' therapeutic potential.
机译:干细胞具有自我更新和维持其未分化状态或分化成一种或多种特殊细胞类型的能力。干细胞的离体扩增和离体处理是工程化细胞替代疗法的一种有前途的方法,内源性干细胞代表了组织修复的潜在可治疗靶标。在利用干细胞的治疗潜力之前,我们必须首先了解控制其命运选择的细胞内机制。这些机制涉及复杂的信号转导和基因调控网络,这些网络具有例如复杂的前馈回路,反馈回路和多个信号通路之间的串扰。系统生物学应用计算和实验方法来调查分子集合的新兴行为,并努力解释这些众多成分如何相互作用以调节分子,细胞和有机体的行为。在这里,我们回顾系统生物学,尤其是计算方面的工作,以了解干细胞命运选择的细胞内机制。我们首先讨论确定性模型和随机模型,这些模型将分子知识合成为数学形式主义,可以模拟重要的系统行为并刺激进一步的实验。此外,诸如贝叶斯网络和主成分分析(PCA)/偏最小二乘(PLS)回归之类的统计分析可以将大型数据集提炼为更易于管理的网络和主成分,从而提供对监管网络的关键方面和成分的见解。总的来说,将建模与实验相结合具有强大的潜力,可以使人们对干细胞的命运选择有更深入的了解,从而有助于开发利用干细胞的治疗潜力的疗法。

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  • 来源
    《Systems Biology, IET》 |2010年第1期|P.1-11|共11页
  • 作者

    Peltier J.; Schaffer D.V.;

  • 作者单位

    Dept. of Chem. Eng., Univ. of California, Berkeley, CA, USA;

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  • 正文语种 eng
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  • 入库时间 2022-08-17 13:11:42

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