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Testing adaptive radiation and key innovation hypotheses in spiders [Review]

机译:测试蜘蛛的自适应辐射和关键创新假设[评论]

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摘要

We combine statistical and phylogenetic approaches to test the hypothesis that adaptive radiation and key innovation have contributed to the diversity of the order Araneae. The number of unbalanced araneid clades (those whose species numbers differ by 90% or more) exceeds the number predicted by a null Markovian model. The current phylogeny of spider families contains 74 bifurcating nodes, of which 31 are unbalanced. As this is significantly more than the 14.8 expected unbalanced nodes, some of the diversity within the Araneae can be attributed to some deterministic cause (e.g., adaptive radiation). One of the more highly unbalanced (97%) bifurcations divides the orb-weaving spiders into the Deinopoidea and the larger Araneoidea. A simple statistical model shows that the inequality in diversity between the Deinopoidea and the Araneoidea is significant, and that it is associated with the replacement of primitive cribellar capture thread by viscous adhesive thread and a change from a horizontal to a vertical orb-web orientation. These changes improve an orb-web's ability to intercept and retain prey and expand the adaptive zone that orb-weaving spiders can occupy and are, therefore, considered to be "key innovations.". [References: 120]
机译:我们结合统计和系统发生方法来检验以下假设:适应性辐射和关键创新促进了伞形目的多样性。不平衡的芳族植物进化枝(物种数相差90%或以上的进化枝)的数目超过了空马尔可夫模型预测的数目。当前蜘蛛家族的系统发育包含74个分支节点,其中31个是不平衡的。由于这明显大于14.8个预期的不平衡节点,因此Araneae内的某些多样性可以归因于某些确定性原因(例如,自适应辐射)。高度不平衡(97%)的分叉之一将编织天体的蜘蛛分为Deinopoidea和较大的Araneoidea。一个简单的统计模型表明,龙爪亚目和蛛形纲之间的多样性不平等是显着的,这与粘性粘胶线代替原始的小脑捕获线以及从水平到垂直的球网方向变化有关。这些变化提高了天体网拦截和保留猎物的能力,并扩展了天体织网蜘蛛可以占据的适应区,因此被认为是“关键创新”。 [参考:120]

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