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Inference on autoregulation in gene expression with variance-to-mean ratio

机译:基于方差均值比的基因表达自动调节的推断

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摘要

Some genes can promote or repress their own expressions, which is called autoregulation. Although gene regulation is a central topic in biology, autoregulation is much less studied. In general, it is extremely difficult to determine the existence of autoregulation with direct biochemical approaches. Nevertheless, some papers have observed that certain types of autoregulations are linked to noise levels in gene expression. We generalize these results by two propositions on discrete-state continuous-time Markov chains. These two propositions form a simple but robust method to infer the existence of autoregulation from gene expression data. This method only needs to compare the mean and variance of the gene expression level. Compared to other methods for inferring autoregulation, our method only requires non-interventional one-time data, and does not need to estimate parameters. Besides, our method has few restrictions on the model. We apply this method to four groups of experimental data and find some genes that might have autoregulation. Some inferred autoregulations have been verified by experiments or other theoretical works.
机译:一些基因可以促进或抑制自身的表达,这称为自动调节。尽管基因调控是生物学的核心话题,但对自动调控的研究要少得多。一般来说,用直接的生化方法确定自动调节的存在是极其困难的。然而,一些论文观察到某些类型的自动调节与基因表达中的噪音水平有关。我们通过离散状态连续时间马尔可夫链上的两个命题来推广这些结果。这两个命题形成了一种简单而稳健的方法,可以从基因表达数据中推断出自动调节的存在。该方法只需要比较基因表达水平的均值和方差。与其他推断自动调节的方法相比,我们的方法只需要非干预的一次性数据,不需要估计参数。此外,我们的方法对模型几乎没有限制。我们将这种方法应用于四组实验数据,并发现一些可能具有自动调节的基因。一些推断的自动调节已经通过实验或其他理论工作得到验证。

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