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Estimating a structured covariance matrix from multi-lab measurements in high-throughput biology

机译:从高通量生物学中的多实验室测量估计结构化协方差矩阵

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摘要

We consider the problem of quantifying the degree of coordination between transcription and translation, in yeast. Several studies have reported a surprising lack of coordination over the years, in organisms as different as yeast and human, using diverse technologies. However, a close look at this literature suggests that the lack of reported correlation may not reflect the biology of regulation. These reports do not control for between-study biases and structure in the measurement errors, ignore key aspects of how the data connect to the estimand, and systematically underestimate the correlation as a consequence. Here, we design a careful meta-analysis of 27 yeast data sets, supported by a multilevel model, full uncertainty quantification, a suite of sensitivity analyses and novel theory, to produce a more accurate estimate of the correlation between mRNA and protein levels—a proxy for coordination. From a statistical perspective, this problem motivates new theory on the impact of noise, model mis-specifications and non-ignorable missing data on estimates of the correlation between high dimensional responses. We find that the correlation between mRNA and protein levels is quite high under the studied conditions, in yeast, suggesting that post-transcriptional regulation plays a less prominent role than previously thought.
机译:我们考虑量化酵母中转录与翻译之间的协调程度的问题。数年的研究报告称,多年来,使用多种技术,在与酵母和人类不同的生物体中缺乏协调性。然而,仔细研究该文献表明,缺乏报道的相关性可能并不反映调节的生物学性。这些报告没有控制研究之间的偏差和测量误差中的结构,忽略了数据如何连接到估计值的关键方面,因此系统地低估了相关性。在这里,我们设计了27种酵母数据集的仔细荟萃分析,并采用多水平模型,完全不确定性定量,一套敏感性分析和新颖的理论进行支持,以产生对mRNA和蛋白质水平之间相关性的更准确估计-代理协调。从统计角度来看,此问题激发了有关噪声,模型错误规格和不可忽略的缺失数据对高维响应之间相关性估计的影响的新理论。我们发现,在酵母条件下,在研究条件下,mRNA和蛋白质水平之间的相关性非常高,这表明转录后调控的作用不如以前想像的重要。

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