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首页> 外文期刊>Journal of the Royal Society Interface >The interplay of spatial organization and biochemistry in building blocks of cellular signalling pathways
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The interplay of spatial organization and biochemistry in building blocks of cellular signalling pathways

机译:空间组织与生物化学在构建蜂窝信号通路块中的相互作用

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Biochemical pathways and networks are central to cellular information processing. While a broad range of studies have dissected multiple aspects of information processing in biochemical pathways, the effect of spatial organization remains much less understood. It is clear that space is central to intracellular organization, plays important roles in cellular information processing and has been exploited in evolution; additionally, it is being increasingly exploited in synthetic biology through the development of artificial compartments, in a variety of ways. In this paper, we dissect different aspects of the interplay between spatial organization and biochemical pathways, by focusing on basic building blocks of these pathways: covalent modification cycles and two-component systems, with enzymes which may be monofunctional or bifunctional. Our analysis of spatial organization is performed by examining a range of 'spatial designs': patterns of localization or non-localization of enzymes/substrates, theoretically and computationally. Using these well-characterized in silico systems, we analyse the following. (i) The effect of different types of spatial organization on the overall kinetics of modification, and the role of distinct modification mechanisms therein. (ii) How different information processing characteristics seen experimentally and studied from the viewpoint of kinetics are perturbed, or generated. (iii) How the activity of enzymes (bifunctional enzymes in particular) may be spatially manipulated, and the relationship between localization and activity. (iv) How transitions in spatial organization (encountered either through evolution or through the lifetime of cells, as seen in multiple model organisms) impacts the kinetic module (and pathway) behaviour, and how transitions in chemistry may be impacted by prior spatial organization. The basic insights which emerge are central to understanding the role of spatial organization in biochemical pathways in both bacteria and eukaryotes, and are of direct relevance to engineering spatial organization of pathways in bottom-up synthetic biology in cellular and cell-free systems.
机译:生物化学途径和网络是蜂窝信息处理的核心。虽然广泛的研究在生化途径中解释了信息处理的多个方面,但空间组织的效果仍然不太了解。很明显,空间是细胞内组织的核心,在蜂窝信息处理中起重要作用,并已被利用在进化中;此外,通过开发人造隔室,越来越多地利用人工隔室。在本文中,通过专注于这些途径的基本构建块:共价修饰循环和双组分系统,对其具有单官能或双官能的酶的基本构建块来分析空间组织和生物化学途径之间的相互作用之间的不同方面。我们对空间组织的分析是通过检查一系列“空间设计”:理论和计算的“空间设计”:定位或酶/基板的非定位模式进行。我们在Silico系统中使用这些特征,我们分析了以下内容。 (i)不同类型的空间组织对修改的整体动力学的影响,以及其中不同修饰机制的作用。 (ii)从动力学的观点来看和从动力学的观点来看,从动力学的观点出现不同的信息处理特征是如何扰动或产生的。 (iii)如何在空间上操纵酶的活性(特别是双官能酶),以及定位与活性之间的关系。 (iv)在空间组织中转换(通过进化或通过细胞的寿命遇到,如多种模型生物中)影响动力学模块(和途径)行为,以及化学中的转换可能会受到先前的空间组织的影响。出现的基本见解是理解空间组织在细菌和真核生物中生化途径中的作用,并且与细胞和无细胞系统中自下而上的合成生物学中的工程空间组织有直接相关。

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