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Pedigree and marker information requirements to monitor genetic variability

机译:家谱和标记信息要求,以监测遗传变异

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There are several measures available to describe the genetic variability of populations. The average inbreeding coefficient of a population based on pedigree information is a frequently chosen option. Due to the developments in molecular genetics it is also possible to calculate inbreeding coefficients based on genetic marker information. A simulation study was carried out involving ten sires and 50 dams. The animals were mated over a period of 20 discrete generations. The population size was kept constant. Different situations with regard to the level of polymorphism and initial allele frequencies and mating scheme (random mating, avoidance of full sib mating, avoidance of full sib and half sib mating) were considered. Pedigree inbreeding coefficients of the last generation using full pedigree or 10, 5 and 2 generations of the pedigree were calculated. Marker inbreeding coefficients based on different sets of microsatellite loci were also investigated. Under random mating, pedigree-inbreeding coefficients are clearly more closely related to true autozygosity (i.e., the actual proportion of loci with alleles identical by descent) than marker-inbreeding coefficients. If mating is not random, the demands on the quality and quantity of pedigree records increase. Greater attention must be paid to the correct parentage of the animals.
机译:有几种方法可以用来描述种群的遗传变异性。基于谱系信息的种群平均近交系数是一个经常选择的选项。由于分子遗传学的发展,也有可能根据遗传标记信息计算近交系数。进行了一个模拟研究,涉及10个母马和50个水坝。使这些动物交配20个不连续世代。人口规模保持不变。考虑了关于多态性水平和初始等位基因频率以及交配方案的不同情况(随机交配,避免完全同胞交配,避免完全同胞和半同胞交配)。计算使用完整谱系或10、5和2代谱系的最后一代的谱系近交系数。还研究了基于不同组微卫星基因座的标记近交系数。在随机交配下,谱系近交系数显然比真实近交纯合度(即与后代相同的等位基因的基因座的实际比例)比标记近交系数更紧密相关。如果交配不是随机的,则对谱系记录的质量和数量的要求就会增加。必须更加注意动物的正确父母身份。

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