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Metabolic systems biology: a brief primer

机译:代谢系统生物学:简要入门

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摘要

In the early to mid‐20th century, reductionism as a concept in biology was challenged by key thinkers, including Ludwig von Bertalanffy. He proposed that living organisms were specific examples of complex systems and, as such, they should display characteristics including hierarchical organisation and emergent behaviour. Yet the true study of complete biological systems (for example, metabolism) was not possible until technological advances that occurred 60 years later. Technology now exists that permits the measurement of complete levels of the biological hierarchy, for example the genome and transcriptome. The complexity and scale of these data require computational models for their interpretation. The combination of these – systems thinking, high‐dimensional data and computation – defines systems biology, typically accompanied by some notion of iterative model refinement. Only sequencing‐based technologies, however, offer full coverage. Other ‘omics’ platforms trade coverage for sensitivity, although the densely connected nature of biological networks suggests that full coverage may not be necessary. Systems biology models are often characterised as either ‘bottom‐up’ (mechanistic) or ‘top‐down’ (statistical). This distinction can mislead, as all models rely on data and all are, to some degree, ‘middle‐out’. Systems biology has matured as a discipline, and its methods are commonplace in many laboratories. However, many challenges remain, especially those related to large‐scale data integration.
机译:在20世纪初至中期,还原主义作为生物学的概念受到了包括Ludwig von Bertalanffy在内的主要思想家的挑战。他提出,生物体是复杂系统的特定示例,因此,它们应显示出包括等级组织和紧急行为在内的特征。但是直到60年后发生技术进步,才可能对完整的生物系统(例如新陈代谢)进行真正的研究。现在存在可以测量生物学层次完整水平的技术,例如基因组和转录组。这些数据的复杂性和规模需要用于解释的计算模型。这些因素(系统思维,高维数据和计算)的组合定义了系统生物学,通常伴随着一些迭代模型改进的概念。但是,只有基于序列的技术才能提供完整的覆盖范围。其他的“组学”平台用覆盖范围来换取敏感性,尽管生物网络的紧密联系性质表明可能不需要完全覆盖。系统生物学模型通常被称为“自下而上”(机械)或“自上而下”(统计)。这种区分可能会引起误解,因为所有模型都依赖于数据,并且所有模型在某种程度上都属于“中间”。系统生物学已作为一门学科而成熟,其方法在许多实验室中司空见惯。但是,仍然存在许多挑战,尤其是与大规模数据集成相关的挑战。

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