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The FlyCatwalk: A High-Throughput Feature-Based Sorting System for Artificial Selection in Drosophila

机译:FlyCatwalk:果蝇人工选择的基于高通量特征的分类系统

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摘要

Experimental evolution is a powerful tool for investigating complex traits. Artificial selection can be applied for a specific trait and the resulting phenotypically divergent populations pool-sequenced to identify alleles that occur at substantially different frequencies in the extreme populations. To maximize the proportion of loci that are causal to the phenotype among all enriched loci, population size and number of replicates need to be high. These requirements have, in fact, limited evolution studies in higher organisms, where the time investment required for phenotyping is often prohibitive for large-scale studies. Animal size is a highly multigenic trait that remains poorly understood, and an experimental evolution approach may thus aid in gaining new insights into the genetic basis of this trait. To this end, we developed the FlyCatwalk, a fully automated, high-throughput system to sort live fruit flies (Drosophila melanogaster) based on morphometric traits. With the FlyCatwalk, we can detect gender and quantify body and wing morphology parameters at a four-old higher throughput compared with manual processing. The phenotyping results acquired using the FlyCatwalk correlate well with those obtained using the standard manual procedure. We demonstrate that an automated, high-throughput, feature-based sorting system is able to avoid previous limitations in population size and replicate numbers. Our approach can likewise be applied for a variety of traits and experimental settings that require high-throughput phenotyping.
机译:实验进化是研究复杂性状的有力工具。可以对特定性状进行人工选择,然后对所得表型上不同的种群进行库测序,以鉴定在极端种群中以实质上不同的频率出现的等位基因。为了使所有富集基因座中与表型相关的基因座比例最大,种群数量和重复次数必须很高。这些要求实际上限制了在高等生物中的进化研究,在这些研究中,表型分析所需的时间投入通常对大规模研究是禁止的。动物的大小是一个高度多基因的性状,至今仍知之甚少,因此实验性进化方法可能有助于获得对该性状遗传基础的新见解。为此,我们开发了FlyCatwalk,这是一种全自动的高通量系统,可以根据形态特征对果蝇(果蝇)进行分类。与手动处理相比,借助FlyCatwalk,我们可以检测到性别并量化机体和机翼形态参数,其吞吐量是后者的四倍。使用FlyCatwalk获得的表型结果与使用标准手动程序获得的表型结果非常相关。我们证明了一种自动化的,高通量的,基于特征的排序系统能够避免种群数量和重复数量的先前限制。我们的方法同样可以应用于需要高通量表型的各种性状和实验环境。

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