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群体遗传学中的七个常见错误及如何避免它们。

Seven common mistakes in population genetics and how to avoid them.

作者信息

Meirmans Patrick G

机构信息

Institute for Biodiversity and Ecosystem Dynamics (IBED), University of Amsterdam, P.O. Box 94248, 1090GE, Amsterdam, Netherlands.

出版信息

Mol Ecol. 2015 Jul;24(13):3223-31. doi: 10.1111/mec.13243. Epub 2015 Jun 19.

Abstract

As the data resulting from modern genotyping tools are astoundingly complex, genotyping studies require great care in the sampling design, genotyping, data analysis and interpretation. Such care is necessary because, with data sets containing thousands of loci, small biases can easily become strongly significant patterns. Such biases may already be present in routine tasks that are present in almost every genotyping study. Here, I discuss seven common mistakes that can be frequently encountered in the genotyping literature: (i) giving more attention to genotyping than to sampling, (ii) failing to perform or report experimental randomization in the laboratory, (iii) equating geopolitical borders with biological borders, (iv) testing significance of clustering output, (v) misinterpreting Mantel's r statistic, (vi) only interpreting a single value of k and (vii) forgetting that only a small portion of the genome will be associated with climate. For every of those issues, I give some suggestions how to avoid the mistake. Overall, I argue that genotyping studies would benefit from establishing a more rigorous experimental design, involving proper sampling design, randomization and better distinction of a priori hypotheses and exploratory analyses.

摘要

由于现代基因分型工具产生的数据极其复杂,基因分型研究在样本设计、基因分型、数据分析和解读等方面需要格外谨慎。这种谨慎是必要的,因为对于包含数千个位点的数据集而言,微小的偏差很容易变成极具显著性的模式。此类偏差可能在几乎每项基因分型研究都存在的常规任务中就已出现。在此,我将讨论基因分型文献中经常会遇到的七个常见错误:(i)对基因分型的关注多于对样本采集的关注;(ii)在实验室中未进行或未报告实验随机化;(iii)将地缘政治边界等同于生物边界;(iv)检验聚类输出的显著性;(v)错误解读曼特尔氏r统计量;(vi)仅解读k的单一值;以及(vii)忘记只有基因组的一小部分会与气候相关。针对上述每个问题,我都给出了一些避免犯错的建议。总体而言,我认为基因分型研究将受益于建立更严格的实验设计,包括适当的样本设计、随机化以及更好地区分先验假设和探索性分析。

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