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仅可获取的信息是有用的:来自于梯度介导模式形成的见解。

Only accessible information is useful: insights from gradient-mediated patterning.

机构信息

Joseph Henry Laboratories of Physics , Princeton University , Princeton, NJ 08544, USA ; Harvard Center of Mathematical Sciences and Applications , Harvard University , Cambridge, MA 02138, USA ; Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University , Cambridge, MA 02138, USA ; Kavli Institute for Bionano Science and Technology, Harvard University , Cambridge, MA 02138, USA.

Joseph Henry Laboratories of Physics , Princeton University , Princeton, NJ 08544, USA ; Lewis-Sigler Institute for Integrative Genomics, Princeton University , Princeton, NJ 08544, USA.

出版信息

R Soc Open Sci. 2015 Nov 25;2(11):150486. doi: 10.1098/rsos.150486. eCollection 2015 Nov.

Abstract

Information theory is gaining popularity as a tool to characterize performance of biological systems. However, information is commonly quantified without reference to whether or how a system could extract and use it; as a result, information-theoretic quantities are easily misinterpreted. Here, we take the example of pattern-forming developmental systems which are commonly structured as cascades of sequential gene expression steps. Such a multi-tiered structure appears to constitute sub-optimal use of the positional information provided by the input morphogen because noise is added at each tier. However, one must distinguish between the total information in a morphogen and information that can be usefully extracted and interpreted by downstream elements. We demonstrate that quantifying the information that is accessible to the system naturally explains the prevalence of multi-tiered network architectures as a consequence of the noise inherent to the control of gene expression. We support our argument with empirical observations from patterning along the major body axis of the fruit fly embryo. We use this example to highlight the limitations of the standard information-theoretic characterization of biological signalling, which are frequently de-emphasized, and illustrate how they can be resolved.

摘要

信息论作为一种描述生物系统性能的工具越来越受欢迎。然而,信息通常是在不考虑系统是否能够提取和利用信息的情况下进行量化的;因此,信息论的数量很容易被误解。在这里,我们以模式形成的发育系统为例,这些系统通常被构建为顺序基因表达步骤的级联。这种多层次的结构似乎构成了对输入形态发生素提供的位置信息的次优利用,因为在每个层次都会增加噪声。然而,人们必须区分形态发生素中的总信息量和下游元件可以有效提取和解释的信息量。我们证明,量化系统可访问的信息量可以自然地解释多层面网络架构的普遍性,这是由于基因表达控制所固有的噪声。我们用果蝇胚胎主要体轴上的模式形成的实证观察来支持我们的论点。我们使用这个例子来强调标准的生物信号信息论特征描述的局限性,这些局限性经常被忽视,并说明如何解决这些局限性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f33f/4680620/1051c4609658/rsos150486-g1.jpg

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