Kitakado Toshihide, Kitada Shuichi, Obata Yasuhiro, Kishino Hirohisa
Faculty of Marine Science, Tokyo University of Marine Science and Technology, Japan.
Genetics. 2006 Aug;173(4):2063-72. doi: 10.1534/genetics.106.056424.
In stock enhancement programs, it is important to assess mixing rates of released individuals in stocks. For this purpose, genetic stock identification has been applied. The allele frequencies in a composite population are expressed as a mixture of the allele frequencies in the natural and released populations. The estimation of mixing rates is possible, under successive sampling from the composite population, on the basis of temporal changes in allele frequencies. The allele frequencies in the natural population may be estimated from those of the composite population in the preceding year. However, it should be noted that these frequencies can vary between generations due to genetic drift. In this article, we develop a new method for simultaneous estimation of mixing rates and genetic drift in a stock enhancement program. Numerical simulation shows that our procedure estimates the mixing rate with little bias. Although the genetic drift is underestimated when the amount of information is small, reduction of the bias is possible by analyzing multiple unlinked loci. The method was applied to real data on mud crab stocking, and the result showed a yearly variation in the mixing rate.
在放流增殖计划中,评估放流个体在种群中的混合率很重要。为此,已应用遗传种群识别方法。复合种群中的等位基因频率表示为自然种群和放流种群中等位基因频率的混合。在从复合种群中连续抽样的情况下,基于等位基因频率的时间变化,可以估计混合率。自然种群中的等位基因频率可以根据上一年复合种群的频率来估计。然而,应该注意的是,由于遗传漂变,这些频率在代际之间可能会有所不同。在本文中,我们开发了一种在放流增殖计划中同时估计混合率和遗传漂变的新方法。数值模拟表明,我们的方法在估计混合率时偏差很小。虽然当信息量较小时遗传漂变被低估,但通过分析多个不连锁的基因座可以减少偏差。该方法应用于青蟹放流的实际数据,结果显示混合率存在年度变化。