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A temporal switch model for estimating transcriptional activity in gene expression

机译:用于估计基因表达中转录活性的时间转换模型

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摘要

Motivation: The analysis and mechanistic modelling of time series gene expression data provided by techniques such as microarrays, NanoString, reverse transcription–polymerase chain reaction and advanced sequencing are invaluable for developing an understanding of the variation in key biological processes. We address this by proposing the estimation of a flexible dynamic model, which decouples temporal synthesis and degradation of mRNA and, hence, allows for transcriptional activity to switch between different states.\ud\udResults: The model is flexible enough to capture a variety of observed transcriptional dynamics, including oscillatory behaviour, in a way that is compatible with the demands imposed by the quality, time-resolution and quantity of the data. We show that the timing and number of switch events in transcriptional activity can be estimated alongside individual gene mRNA stability with the help of a Bayesian reversible jump Markov chain Monte Carlo algorithm. To demonstrate the methodology, we focus on modelling the wild-type behaviour of a selection of 200 circadian genes of the model plant Arabidopsis thaliana. The results support the idea that using a mechanistic model to identify transcriptional switch points is likely to strongly contribute to efforts in elucidating and understanding key biological processes, such as transcription and degradation.
机译:动机:由微阵列,NanoString,逆转录-聚合酶链反应和高级测序等技术提供的时间序列基因表达数据的分析和机理建模对于加深对关键生物学过程变异的理解具有重要价值。我们通过提出一个灵活的动态模型来解决这个问题,该模型将mRNA的时间合成和降解解耦,因此允许转录活性在不同状态之间切换。\ ud \ ud结果:该模型足够灵活,可以捕获各种观察到的转录动力学,包括振荡行为,其方式与数据的质量,时间分辨率和数量所施加的要求兼容。我们显示,可以借助贝叶斯可逆跳跃马尔可夫链蒙特卡洛算法,与单个基因mRNA稳定性一起估算转录活动中开关事件的时间和数量。为了证明该方法,我们着重于对模型植物拟南芥中200个昼夜节律基因的选择进行野生型行为建模。结果支持这样的想法,即使用机械模型来识别转录转换点可能会极大地有助于阐明和理解关键的生物学过程(例如转录和降解)。

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