首页> 外文期刊>Genetics: A Periodical Record of Investigations Bearing on Heredity and Variation >EXPERIMENTAL POPULATION GENETICS OF MEIOTIC DRIVE SYSTEMS. III. NEUTRALIZATION OF SEX-RATIO DISTORTION IN DROSOPHILA THROUGH SEX-CHROMOSOME ANEUPLOIDY
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EXPERIMENTAL POPULATION GENETICS OF MEIOTIC DRIVE SYSTEMS. III. NEUTRALIZATION OF SEX-RATIO DISTORTION IN DROSOPHILA THROUGH SEX-CHROMOSOME ANEUPLOIDY

机译:动力学驱动系统的实验种群遗传学。三,通过性染色体不对称性对果蝇中的性别比例畸变进行中和

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Laboratory populations of Drosophila melanogaster were challenged by pseudo- Y drive, which mimics true Y -chromosome meiotic drive through the incorporation of Segregation Distorter ( SD ) in a T ( Y;2 ) complex. This causes extreme sex-ratio distrotion and can ultimately lead to population extinction. Populations normally respond by the gradual accumulation of drive suppressors, and this reduction in strength of distortion allows the sex ratio to move closer to the optimal value of 1:1. One population monitored, however, was rapidly able to neutralize the effects of sex-ratio distortion by the accumulation of sex-chromosome aneuploids ( XXY, XYY ). This apparently occurs because XX -bearing eggs, produced in relatively high numbers (~4%) by XXY genotypes, become the main population source of females under strong Y -chromosome drive. Computer simulation for a discrete generation model incorporating random mating with differences in fitness and segregation permits several predictions that can be compared to the data. First, sex-chromosome aneuploids should rapidly attain equilibrium, while stabilizing the population at ~60% males. This sex ratio should be roughly independent of the strength of the meiotic drive. Moreover, conditions favoring the accumulation of drive suppressors ( e.g. , weak distortion, slow population extinction) are insufficient for maintaining aneuploidy, while conditions favoring aneuploidy ( e.g. , strong distortion, low production of females) lead to population extinction before drive suppressors can accumulate. Thus, the different mechanisms for neutralizing sex-ratio distortion are complementary. In addition, Y drive and sex-chromosome aneuploidy are potentially co-adaptive, since under some conditions neither will survive alone. Finally, these results suggest the possibility that genetic variants promoting sex-chromosome nondisjunction may have a selective advantage in natural populations faced with sex-ratio distortion.
机译:果蝇(Drosophila melanogaster)的实验室种群受到伪Y驱动的挑战,该伪Y驱动通过在T(Y; 2)络合物中掺入偏析干扰物(SD)来模仿真正的Y染色体减数分裂驱动。这会导致极端的性别比例歧视,并最终导致人口灭绝。人群通常通过逐渐堆积的驱动抑制器来做出响应,并且失真强度的这种降低使性别比更接近于1:1的最佳值。然而,一个受监视的人群通过性染色体非整倍体(XXY,XYY)的积累,迅速能够抵消中性比例畸变的影响。这显然是由于由XXY基因型产生的数量相对较高(〜4%)的带有XX的卵成为在强Y染色体驱动下雌性的主要种群来源。对于离散生成模型的计算机仿真,该模型结合了具有适应性和隔离性差异的随机交配,因此可以将多个预测与数据进行比较。首先,性染色体非整倍体应迅速达到平衡,同时使约60%的男性人口稳定。该性别比应大致独立于减数分裂驱动力的强度。此外,有利于驱动抑制因子积累的条件(例如,弱畸变,缓慢的种群灭绝)不足以维持非整倍性,而有利于非整倍性的条件(例如,强烈畸变,雌性低产)导致种群在驱动抑制因子积累之前就已经灭绝了。因此,消除性别比例失真的不同机制是互补的。此外,Y驱动和性染色体非整倍性可能具有潜在的共适应性,因为在某些条件下两者都无法单独生存。最后,这些结果表明,促进性染色体非分离的遗传变异在面临性别比率扭曲的自然种群中可能具有选择优势。

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