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Comparative analysis of the multivariate genetic architecture of morphological traits in three species of Gomphocerine grasshoppers

机译:三种叶片蝗虫多变量遗传建筑的比较分析

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Evolutionary change is the change in trait values across generations, and usually occurs in multidimensional trait space rather than along isolated traits. Genetic covariation influences the magnitude and direction of evolutionary change and can be statistically summarized by the additive genetic (co)variance matrix, G. While G can affect the response to selection, it is exposed to evolutionary change by selection and genetic drift, but the magnitude and speed of these changes are poorly understood. We use comparative G matrix analyses to assess evolution of the shape and orientation of G over longer timescales in three species of Gomphocerine grasshoppers. We estimate 10 x 10 G matrices for five morphological traits expressed in both sexes. We find low-to-moderate heritabilities (average 0.36), mostly large cross-sex correlations (average 0.54) and moderate between-trait correlations (average 0.34). G matrices differ significantly among species with wing length contributing most to these differences. Wing length is the trait that is most divergent among species, suggesting it has been under selection during species divergence. The more distantly related species, Pseudochorthippus parallelus, was the most different in the shape of G. Projection of contemporary genetic variation into the divergence space D illustrates that the major axis of genetic variation in Gomphocerippus rufus is aligned with divergence from Chorthippus biguttulus, while the major axis of genetic variation in neither of the species is aligned with the divergence between Pseudochorthippus parallelus and the other two species. Our results demonstrate significant differences in G matrices with a phylogenetic signal in the differentiation.
机译:进化变化是几代特质价值的变化,通常发生在多维特质空间而不是沿孤立的特征。遗传协变量影响进化变化的幅度和方向,可以通过添加遗传遗传(CO)方差基质,G.而G可以影响对选择的响应,因此通过选择和遗传漂移暴露于进化变化,但是这些变化的幅度和速度明白很差。我们使用比较G矩阵分析来评估G在三种锭术蚱蜢中较长时间较长时间的形状和取向的演变。我们估计在两性中表达的五种形态特征的10×10g矩阵。我们发现低于适度的秘度(平均0.36),大多数跨性相关性(平均0.54)和适度的性状相关性(平均0.34)。 G矩阵在具有翼长的物种中有显着差异,为这些差异贡献大部分。翼长度是物种中最分散的特征,表明它在物种分歧期间已经在选择。更远距离的物种PseudoChorthippus Passplstus是G的形状最差异。当代遗传变化进入发散空间D的投影说明了Gomphocerippus rufus的主要遗传变异轴与Holfutpepus Biguttulus的分歧进行了对齐,而这些物种的主要遗传变异轴与伪论PUSPASSSSTS和另外两个物种之间的分歧进行对齐。我们的结果表明了在分化中具有系统发育信号的G矩阵的显着差异。

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