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Apaf1 apoptotic function critically limits Sonic hedgehog signaling during craniofacial development

机译:Apaf1的凋亡功能严重限制了颅面发育过程中的Sonic刺猬信号

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Apaf1 is an evolutionarily conserved component of the apoptosome. In mammals, the apoptosome assembles when cytochrome c is released from mitochondria, binding Apaf1 in an ATP-dependent manner and activating caspase 9 to execute apoptosis. Here we identify and characterize a novel mouse mutant, yautja, and find it results from a leucine-to-proline substitution in the winged-helix domain of Apaf1. We show that this allele of Apaf1 is unique, as the yautja mutant Apaf1 protein is stable, yet does not possess apoptotic function in cell culture or in vivo assays. Mutant embryos die perinatally with defects in craniofacial and nervous system development, as well as reduced levels of apoptosis. We further investigated the defects in craniofacial development in the yautja mutation and found altered Sonic hedgehog (Shh) signaling between the prechordal plate and the frontonasal ectoderm, leading to increased mesenchymal proliferation in the face and delayed or absent ossification of the skull base. Taken together, our data highlight the time-sensitive link between Shh signaling and the regulation of apoptosis function in craniofacial development to sculpt the face. We propose that decreased apoptosis in the developing nervous system allows Shh-producing cells to persist and direct a lateral outgrowth of the upper jaw, resulting in the craniofacial defects we see. Finally, the novel yautja Apaf1 allele offers the first in vivo understanding of a stable Apaf1 protein that lacks a function, which should make a useful tool with which to explore the regulation of programmed cell death in mammals.
机译:Apaf1是凋亡小体的进化保守成分。在哺乳动物中,当细胞色素c从线粒体中释放时,凋亡小体聚集,以ATP依赖的方式结合Apaf1并激活半胱天冬酶9来执行凋亡。在这里,我们确定并表征了一种新型的小鼠突变体yautja,并发现它是由Apaf1的有翼螺旋域中的亮氨酸到脯氨酸取代而产生的。我们显示该Apaf1等位基因是唯一的,因为yautja突变型Apaf1蛋白是稳定的,但在细胞培养或体内测定中不具有凋亡功能。突变的胚胎会在围产期死亡,并具有颅面和神经系统发育缺陷以及凋亡水平降低。我们进一步研究了yautja突变中颅面发育的缺陷,发现在弦前板和额鼻外胚层之间的声波刺猬(Shh)信号改变,导致面部间充质增生增加和颅底骨化延迟或缺失。综上所述,我们的数据突出了Shh信号传导与颅面发育中的凋亡功能调节之间的时间敏感性联系,以雕刻面部。我们提出,发育中的神经系统中凋亡的减少可使Shh产生细胞持续存在并指导上颌骨的侧向向外生长,从而导致我们发现的颅面缺陷。最后,新的yautja Apaf1等位基因首次提供了对缺乏功能的稳定Apaf1蛋白的体内了解,这将成为探索哺乳动物程序性细胞死亡调控的有用工具。

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