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一种用于估计定量基因群体特性的分层统计模型。

A hierarchical statistical model for estimating population properties of quantitative genes.

作者信息

Wu Samuel S, Ma Chang-Xing, Wu Rongling, Casella George

机构信息

Department of Statistics, University of Florida, Gainesville, FL 32611, USA.

出版信息

BMC Genet. 2002 Jun 12;3:10. doi: 10.1186/1471-2156-3-10.

Abstract

BACKGROUND

Earlier methods for detecting major genes responsible for a quantitative trait rely critically upon a well-structured pedigree in which the segregation pattern of genes exactly follow Mendelian inheritance laws. However, for many outcrossing species, such pedigrees are not available and genes also display population properties.

RESULTS

In this paper, a hierarchical statistical model is proposed to monitor the existence of a major gene based on its segregation and transmission across two successive generations. The model is implemented with an EM algorithm to provide maximum likelihood estimates for genetic parameters of the major locus. This new method is successfully applied to identify an additive gene having a large effect on stem height growth of aspen trees. The estimates of population genetic parameters for this major gene can be generalized to the original breeding population from which the parents were sampled. A simulation study is presented to evaluate finite sample properties of the model.

CONCLUSIONS

A hierarchical model was derived for detecting major genes affecting a quantitative trait based on progeny tests of outcrossing species. The new model takes into account the population genetic properties of genes and is expected to enhance the accuracy, precision and power of gene detection.

摘要

背景

早期用于检测影响数量性状的主基因的方法严重依赖于结构良好的谱系,其中基因的分离模式严格遵循孟德尔遗传定律。然而,对于许多杂交物种来说,这样的谱系并不存在,而且基因也表现出群体特性。

结果

本文提出了一种分层统计模型,用于基于主基因在两个连续世代中的分离和传递来监测其存在。该模型通过期望最大化(EM)算法实现,以提供主基因座遗传参数的最大似然估计。这种新方法成功地应用于识别对白杨树茎高生长有重大影响的一个加性基因。该主基因的群体遗传参数估计可以推广到从中抽取亲本的原始育种群体。本文进行了一项模拟研究以评估该模型的有限样本性质。

结论

基于杂交物种的子代测试,推导了一种用于检测影响数量性状的主基因的分层模型。新模型考虑了基因的群体遗传特性,有望提高基因检测的准确性、精确性和功效。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3bdb/117225/f1e156090ea7/1471-2156-3-10-1.jpg

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