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Symbolic Extensions Applied to Multiscale Structure of Genomes

机译:符号扩展应用于基因组的多尺度结构。

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A genome of a living organism consists of a long string of symbols over a finite alphabet carrying critical information for the organism. This includes its ability to control post natal growth, homeostasis, adaptation to changes in the surrounding environment, or to biochemically respond at the cellular level to various specific regulatory signals. In this sense, a genome represents a symbolic encoding of a highly organized system of information whose functioning may be revealed as a natural multilayer structure in terms of complexity and prominence. In this paper we use the mathematical theory of symbolic extensions as a framework to shed light onto how this multilayer organization is reflected in the symbolic coding of the genome. The distribution of data in an element of a standard symbolic extension of a dynamical system has a specific form: the symbolic-sequence is divided into several subsequences (which we call layers) encoding the dynamics on various "scales". We propose that a similar structure resides within the genomes, building our analogy on some of the most recent findings in the field of regulation of genomic DNA functioning.
机译:活生物体的基因组由有限的字母上的一长串符号组成,其中携带着该生物体的关键信息。这包括其控制产后生长,体内平衡,适应周围环境变化的能力,或在细胞水平上对各种特定调节信号进行生化反应的能力。从这个意义上讲,基因组代表了高度组织的信息系统的符号编码,其功能可以从复杂性和突出性方面表现为天然的多层结构。在本文中,我们使用符号扩展的数学理论作为框架,以阐明该多层组织如何在基因组的符号编码中得到反映。数据在动态系统的标准符号扩展的元素中的分布具有特定形式:符号序列分为几个子序列(我们称为层),这些子序列在各种“尺度”上对动力学进行编码。我们建议在基因组中存在相似的结构,以在基因组DNA功能调节领域的一些最新发现为基础建立我们的类比。

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