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Unique expression patterns of multiple key genes associated with the evolution of mammalian flight

机译:与哺乳动物飞行进化相关的多个关键基因的独特表达模式

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Bats are the only mammals capable of true flight. Critical adaptations for flight include a pair of dramatically elongated hands with broad wing membranes. To study the molecular mechanisms of bat wing evolution, we perform genomewide mRNA sequencing and in situ hybridization for embryonic bat limbs. We identify seven key genes that display unique expression patterns in embryonic bat wings and feet, compared with mouse fore- and hindlimbs. The expression of all 50HoxD genes (Hoxd9-13) and Tbx3, six known crucial transcription factors for limb and digit development, is extremely high and prolonged in the elongating wing area. The expression of Fam5c, a tumour suppressor, in bat limbs is bat-specific and significantly high in all short digit regions (the thumb and foot digits). These results suggest multiple genetic changes occurred independently during the evolution of bat wings to elongate the hand digits, promote membrane growth and keep other digits short. Our findings also indicate that the evolution of limb morphology depends on the complex integration of multiple gene regulatory networks and biological processes that control digit formation and identity, chondrogenesis, and interdigital regression or retention.
机译:蝙蝠是唯一能够真正飞行的哺乳动物。关键的飞行调整包括一对细长的带有宽翼膜的手。为了研究蝙蝠翼进化的分子机制,我们对胚胎蝙蝠肢进行了全基因组mRNA测序和原位杂交。我们确定了七个关键基因,与小鼠的前肢和后肢相比,它们在胚胎蝙蝠的翅膀和脚上显示出独特的表达模式。所有50HoxD基因(Hoxd9-13)和Tbx3(肢体和指骨发育的六个已知关键转录因子)的表达都非常高,并且在延伸的翅膀区域中延长。 Fam5c(一种抑癌药)在蝙蝠肢中的表达是蝙蝠特异性的,并且在所有短指位区域(拇指和足指)中均显着较高。这些结果表明,在蝙蝠翅膀的进化过程中,独立发生了多种遗传变化,从而延长了手的手指,促进了膜的生长,并使其他手指短。我们的发现还表明,肢体形态的进化取决于多个基因调控网络和生物过程的复杂整合,这些网络控制着手指的形成和身份,软骨形成以及叉指的退缩或保留。

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