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Evidence for elevated mutation rates in low-quality genotypes

机译:劣质基因型突变率升高的证据

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The deleterious mutation rate plays a key role in a number of important topics in biology, from mating system evolution to human health. Despite this broad significance, the nature and causes of variation in mutation rate are poorly understood, especially in multicellular organisms. We test whether genetic quality, the presence or absence of deleterious alleles, affects the mutation rate in Drosophila melanogaster by using a modified mutation accumulation approach. We find evidence that genotypes constructed to carry deleterious "treatment" alleles on one chromosome during mutation accumulation experience an elevated mutation rate on a different chromosome. Further, this elevation is correlated with the effect of the treatment alleles on phenotypic condition, measured as body mass. Treatment alleles that reduce mass by 10% cause a doubling in the rate of mutational decline. Our results show that mutation rates are sensitive to genetic stress, such that individuals with low-quality genotypes will produce offspring of even lower genetic quality, in a mutational positive feedback loop. This type of variation in mutation rate is expected to alter a variety of predictions based on mutation load theory and accelerate adaptation to new environments. Positive mutational feedback could affect human health by increasing the rate of germline mutation, and possibly somatic mutation, in individuals of poor health because of genetic or environmental stress.
机译:从交配系统进化到人类健康,有害突变率在生物学的许多重要主题中都起着关键作用。尽管具有广泛的意义,但对突变率变异的性质和原因了解甚少,尤其是在多细胞生物中。我们通过使用改良的突变积累方法,测试遗传质量,有害等位基因的存在与否是否会影响果蝇的果蝇突变率。我们发现证据表明,构建为在突变积累过程中在一条染色体上携带有害“治疗”等位基因的基因型在另一条染色体上经历了升高的突变率。此外,该升高与治疗等位基因对表型状况的影响相关,以体重衡量。将质量降低10%的治疗等位基因可使突变下降率增加一倍。我们的结果表明,突变率对遗传压力敏感,因此具有低质量基因型的个体将在突变正反馈回路中产生具有更低遗传质量的后代。突变率的这种类型的变化有望基于突变负载理论改变各种预测,并加速对新环境的适应。积极的突变反馈可以通过增加由于遗传或环境压力而健康状况差的个体的种系突变率,甚至可能是体细胞突变,来影响人类健康。

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