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A Strategy for Finding the Optimal Scale of Plant Core Collection Based on Monte Carlo Simulation

机译:基于Monte Carlo仿真的植物核心集合的最佳规模的策略

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摘要

Core collection is an ideal resource for genome-wide association studies (GWAS). A subcore collection is a subset of a core collection. A strategy was proposed for finding the optimal sampling percentage on plant subcore collection based on Monte Carlo simulation. A cotton germplasm group of 168 accessions with 20 quantitative traits was used to construct subcore collections. Mixed linear model approach was used to eliminate environment effect and GE (genotype × environment) effect. Least distance stepwise sampling (LDSS) method combining 6 commonly used genetic distances and unweighted pair-group average (UPGMA) cluster method was adopted to construct subcore collections. Homogeneous population assessing method was adopted to assess the validity of 7 evaluating parameters of subcore collection. Monte Carlo simulation was conducted on the sampling percentage, the number of traits, and the evaluating parameters. A new method for “distilling free-form natural laws from experimental data” was adopted to find the best formula to determine the optimal sampling percentages. The results showed that coincidence rate of range (CR) was the most valid evaluating parameter and was suitable to serve as a threshold to find the optimal sampling percentage. The principal component analysis showed that subcore collections constructed by the optimal sampling percentages calculated by present strategy were well representative.
机译:核心系列是基因组协会研究(GWAS)的理想资源。 Subcore Collection是核心集合的子集。提出了一种基于Monte Carlo仿真查找植物超电池收集最佳采样百分比的策略。使用具有20种定量性状的168种型棉种质组来构建Subcore系列。混合线性模型方法用于消除环境效应和GE(基因型×环境)效应。采用至少距离逐步采样(LDS)方法组合6个常用的遗传距离和未加权对 - 组平均(UPGMA)簇法来构建Subcore收集。采用均质人口评估方法评估Subcore收集评估参数的有效性。 Monte Carlo仿真在采样百分比,特征数量和评估参数上进行。采用一种新的“从实验数据中蒸馏自由形式自然法”的方法来找到确定最佳采样百分比的最佳公式。结果表明,范围(CR)重合率(CR)是最有效的评估参数,适合用作找到最佳采样百分比的阈值。主要成分分析表明,由目前战略计算的最佳采样百分比构建的Subcore系列是良好的代表性。

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