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Structurally Distinct Ca~(2+) Signaling Domains of Sperm Flagella Orchestrate Tyrosine Phosphorylation and Motility

机译:精子鞭毛组织酪氨酸酪氨酸磷酸化和运动的结构不同Ca〜(2+)信号域。

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摘要

Spermatozoa must leave one organism, navigate long distances, and deliver their paternal DNA into a mature egg. For successful navigation and delivery, a sperm-specific calcium channel is activated in the mammalian flagellum. The genes encoding this channel (CatSpers) appear first in ancient uniflagellates, suggesting that sperm use adaptive strategies developed long ago for single-cell navigation. Here, using genetics, super-resolution fluorescence microscopy, and phosphoproteomics, we investigate the CatSper-dependent mechanisms underlying this flagellar switch. We find that the CatSper channel is required for four linear calcium domains that organize signaling proteins along the flagella. This unique structure focuses tyrosine phosphorylation in time and space as sperm acquire the capacity to fertilize. In heterogeneous sperm populations, we find unique molecular phenotypes, but only sperm with intact CatSper domains that organize time-dependent and spatially specific protein tyrosine phosphorylation successfully migrate. These findings illuminate flagellar adaptation, signal transduction cascade organization, and fertility.
机译:精子必须离开一个生物体,远距离航行,并将其父本DNA传递到成熟的卵中。为了成功导航和递送,哺乳动物鞭毛中的精子特异性钙通道被激活。编码该通道的基因(CatSpers)首先出现在古代单鞭毛虫中,这表明精子使用了很久以前开发的自适应策略来进行单细胞导航。在这里,使用遗传学,超分辨率荧光显微镜和磷酸化蛋白质组学,我们研究了这种鞭毛开关背后的CatSper依赖性机制。我们发现CatSper通道是四个沿着鞭毛组织信号蛋白的线性钙结构域所必需的。当精子获得受精能力时,这种独特的结构将酪氨酸磷酸化集中在时间和空间上。在异质精子群体中,我们发现了独特的分子表型,但只有具有完整的CatSper域的精子才能成功迁移,这些CatSper域组织了时间依赖性和空间特定的蛋白酪氨酸磷酸化。这些发现阐明鞭毛适应,信号转导级联组织和生育能力。

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