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Comparative Analysis of Biologically Relevant Response Curves in Gene Expression Experiments: Heteromorphy Heterochrony and Heterometry

机译:基因表达实验中生物相关响应曲线的比较分析:异形异时和异形

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摘要

To gain biological insights, investigators sometimes compare sequences of gene expression measurements under two scenarios (such as two drugs or species). For this situation, we developed an algorithm to fit, identify, and compare biologically relevant response curves in terms of heteromorphy (different curves), heterochrony (different transition times), and heterometry (different magnitudes). The curves are flat, linear, sigmoid, hockey-stick (sigmoid missing a steady state), transient (sigmoid missing two steady states), impulse (with peak or trough), step (with intermediate-level plateau), impulse+ (impulse with an extra parameter), step+ (step with an extra parameter), further characterized by upward or downward trend. To reduce overfitting, we fit the curves to every other response, evaluated the fit in the remaining responses, and identified the most parsimonious curves that yielded a good fit. We measured goodness of fit using a statistic comparable over different genes, namely the square root of the mean squared prediction error as a percentage of the range of responses, which we call the relative prediction error (RPE). We illustrated the algorithm using data on gene expression at 14 times in the embryonic development in two species of frogs. Software written in Mathematica is freely available.
机译:为了获得生物学见解,研究人员有时会比较两种情况下(例如两种药物或物种)的基因表达测量序列。针对这种情况,我们开发了一种算法,可以根据异质性(不同曲线),异质性(不同过渡时间)和异质性(不同幅度)拟合,识别和比较生物学上相关的响应曲线。曲线是平坦的,线性的,乙状结肠,曲棍球杆(乙状结肠缺少稳态),瞬态(乙状结肠缺少两个稳态),脉冲(具有峰值或谷值),阶跃(具有中级平稳状态),脉冲+(具有额外参数),step +(带有额外参数的步骤),进一步以上升或下降趋势为特征。为了减少过度拟合,我们将曲线拟合到所有其他响应,评估其余响应中的拟合,并确定产生良好拟合的最简约的曲线。我们使用可比的不同基因的统计量来测量拟合优度,即均方预测误差的平方根占响应范围的百分比,我们称其为相对预测误差(RPE)。我们用两种青蛙的胚胎发育中14次基因表达的数据说明了该算法。免费提供用Mathematica编写的软件。

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