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Using a single fluorescent reporter gene to infer half-life of extrinsic noise and other parameters of gene expression.

机译:使用单个荧光报告基因推断外在噪声的半衰期和基因表达的其他参数。

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Fluorescent and luminescent proteins are often used as reporters of transcriptional activity. Given the prevalence of noise in biochemical systems, the time-series data arising from these is of significant interest in efforts to calibrate stochastic models of gene expression and obtain information about sources of nongenetic variability. We present a statistical inference framework that can be used to estimate kinetic parameters of gene expression, as well as the strength and half-life of extrinsic noise from single fluorescent-reporter-gene time-series data. The method takes into account stochastic variability in a fluorescent signal resulting from intrinsic noise of gene expression, kinetics of fluorescent protein maturation, and extrinsic noise, which is assumed to arise at transcriptional level. We use the linear noise approximation and derive an explicit formula for the likelihood of observed fluorescent data. The method is embedded in a Bayesian paradigm, so that certain parameters can be informed from other experiments allowing portability of results across different studies. Inference is performed using Markov chain Monte Carlo. Fluorescent reporters are primary tools to observe dynamics of gene expression and the correct interpretation of fluorescent data is crucial to investigating these fundamental processes of cellular life. As both magnitude and frequency of the noise may have a dramatic effect on the cell fitness, the quantification of stochastic fluctuation is essential to the understanding of how genes are regulated. Our method provides a framework that addresses this important question.
机译:荧光和发光蛋白通常用作转录活性的报告基因。鉴于生化系统中普遍存在噪声,由此产生的时间序列数据对于校准基因表达的随机模型并获取有关非遗传变异性来源的信息具有重大意义。我们提出了一个统计推断框架,可用于估计基因表达的动力学参数,以及来自单个荧光报告基因时间序列数据的外在噪声的强度和半衰期。该方法考虑了由于基因表达的内在噪声,荧光蛋白成熟的动力学和外在噪声而导致的荧光信号的随机变异,这些噪声被认为在转录水平上产生。我们使用线性噪声近似,并为观察到的荧光数据的可能性导出了一个明确的公式。该方法嵌入贝叶斯范式中,因此可以从其他实验中获得某些参数的信息,从而可以在不同研究之间移植结果。使用马尔可夫链蒙特卡罗进行推理。荧光报告基因是观察基因表达动态的主要工具,而荧光数据的正确解释对于研究细胞生命的这些基本过程至关重要。由于噪声的大小和频率都可能对细胞适应性产生巨大影响,因此随机波动的量化对于理解基因的调控至关重要。我们的方法提供了一个解决这个重要问题的框架。

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