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A simulation study on the accuracy of position and effect estimates of linked QTL and their asymptotic standard deviations using multiple interval mapping in an F-2 scheme

机译:在F-2方案中使用多重区间映射对链接QTL的位置和效果估计的准确性及其渐近标准偏差的仿真研究

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Approaches like multiple interval mapping using a multiple-QTL model for simultaneously mapping QTL can aid the identification of multiple QTL, improve the precision of estimating QTL positions and effects, and are able to identify patterns and individual elements of QTL epistasis. Because of the statistical problems in analytically deriving the standard errors and the distributional form of the estimates and because the use of resampling techniques is not feasible for several linked QTL, there is the need to perform large-scale simulation studies in order to evaluate the accuracy of multiple interval mapping for linked QTL and to assess confidence intervals based on the standard statistical theory. From our simulation study it can be concluded that in comparison with a monogenetic background a reliable and accurate estimation of QTL positions and QTL effects of multiple QTL in a linkage group requires much more information from the data. The reduction of the marker interval size from 10 cM to 5 cM led to a higher power in QTL detection and to a remarkable improvement of the QTL position as well as the QTL effect estimates. This is different from the findings for (single) interval mapping. The empirical standard deviations of the genetic effect estimates were generally large and they were the largest for the epistatic effects. These of the dominance effects were larger than those of the additive effects. The asymptotic standard deviation of the position estimates was not a good criterion for the accuracy of the position estimates and confidence intervals based on the standard statistical theory had a clearly smaller empirical coverage probability as compared to the nominal probability. Furthermore the asymptotic standard deviation of the additive, dominance and epistatic effects did not reflect the empirical standard deviations of the estimates very well, when the relative QTL variance was smaller/equal to 0.5. The implications of the above findings are discussed.
机译:诸如使用多QTL模型同时映射QTL的多间隔映射之类的方法可以帮助识别多个QTL,提高估计QTL位置和效应的精度,并且能够识别QTL上位性的模式和单个要素。由于在分析得出标准误差和估计值的分布形式时存在统计问题,并且由于对多个链接的QTL使用重采样技术不可行,因此有必要进行大规模仿真研究以评估准确性QTL的多个区间映射的说明,并根据标准统计理论评估置信区间。从我们的模拟研究中可以得出结论,与单基因背景相比,对链接组中QTL位置和多个QTL的QTL影响进行可靠,准确的估计需要更多的数据信息。标记间隔大小从10 cM减少到5 cM导致QTL检测的功率更高,QTL位置以及QTL效果估计值得到显着改善。这与(单个)间隔映射的发现不同。遗传效应估计的经验标准偏差通常较大,并且对于上位效应最大。这些优势效应大于累加效应。位置估计值的渐近标准差不是位置估计值准确性的好标准,并且基于标准统计理论的置信区间与标称概率相比,经验覆盖率明显较小。此外,当相对QTL方差小于/等于0.5时,加性,支配性和上位性效应的渐近标准偏差不能很好地反映估计的经验标准偏差。讨论了以上发现的含义。

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