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Genetic factors for short life span associated with evolution of the loss of flight ability

机译:与飞行能力丧失的丧失与进化相关的遗传因素

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Acquisition or loss of flying ability is evolutionarily linked with maximum life span (MLS) in mammals and birds. Although ecological factors, such as extrinsic mortality, may lead to either shortened or extended life spans through natural selection, MLS is influenced by complex molecular and metabolic processes, and the genetic changes associated with flying ability that have led to either a longer or shorter MLS are unknown. Here, we examine the parallel evolution of flight in mammals and birds and investigate positively selected genes at branches where either the acquisition (in little brown bats and large flying foxes) or loss (in Adélie penguins, emperor penguins, common ostriches, emus, great spotted kiwis, little spotted kiwis, okarito brown kiwis, greater rheas, lesser rheas, and cassowaries) of flight abilities occurred. Although we found no shared genes under selection among all the branches of interest, 7 genes were found to be positively selected in 2 of the branches. Among the 7 genes, only IGF2BP2 is known to affect both life span and energy expenditure. The positively selected mutations detected in IGF2BP2 likely affected the functionality of the encoded protein. IGF2BP2, which has been reported to simultaneously prolong life span and increase energy expenditure, could be responsible for the evolution of shortened MLS associated with the loss of flying ability.
机译:获取或丧失飞行能力与哺乳动物和鸟类中的最大寿命(MLS)与最大寿命相连。尽管通过自然选择可能导致外部死亡率的生态因素,例如通过自然选择缩短或延长寿命,但MLS受复杂的分子和代谢过程的影响,并且与飞行能力相关的遗传变化导致了更长或更短的MLS不明。在这里,我们研究哺乳动物和鸟类飞行的平行演变,并在分支机构(小棕色蝙蝠和大型飞狐)或损失(在Adéliepenguins,皇帝企鹅,常见的鸵鸟,鸸,emus发现了猕猴桃,小斑点猕猴桃,奥卡里托棕色猕猴桃,更大的RHEAS,较小的RHEAS和配丝缎)发生了。虽然我们在所有感兴趣的分支中发现没有选择的共享基因,但发现7个基因被发现在2个分支中被肯定选择。在7个基因中,只知道IGF2BP2会影响寿命和能量消耗。在IGF2BP2中检测到的正选择突变可能影响编码蛋白的功能。据报道,IGF2BP2同时延长寿命并增加能源支出,可能是对与飞行能力丧失相关的缩短MLS的演变。

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