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编码一种含卷曲螺旋的纤毛蛋白的CCDC11发生突变,会因左右组织者中单纤毛运动障碍而导致内脏反位。

Mutations in CCDC11, which encodes a coiled-coil containing ciliary protein, causes situs inversus due to dysmotility of monocilia in the left-right organizer.

作者信息

Narasimhan Vijayashankaranarayanan, Hjeij Rim, Vij Shubha, Loges Niki Tomas, Wallmeier Julia, Koerner-Rettberg Cordula, Werner Claudius, Thamilselvam Surin Kumar, Boey Adrian, Choksi Semil P, Pennekamp Petra, Roy Sudipto, Omran Heymut

机构信息

Genes, Development and Disease Laboratory, Institute of Molecular and Cell Biology, Proteos, Singapore.

出版信息

Hum Mutat. 2015 Mar;36(3):307-18. doi: 10.1002/humu.22738.

DOI:10.1002/humu.22738
PMID:25504577
Abstract

In vertebrates, establishment of left-right (LR) asymmetry is dependent on cilia-driven fluid flow within the LR organizer. Mutations in CCDC11 disrupt LR asymmetry in humans, but how the gene functions in LR patterning is presently unknown. We describe a patient with situs inversus totalis carrying homozygous loss-of-function mutations in CCDC11. We show that CCDC11 is an axonemal protein in respiratory cilia, but is largely dispensable for their structure and motility. To investigate the role of CCDC11 in LR development, we studied the zebrafish homolog of the gene. Like in human respiratory cilia, loss of Ccdc11 causes minor defects in the motility of zebrafish kidney cilia, although the protein localizes to their axonemes and base. By contrast, Ccdc11 localizes exclusively to the basal bodies of cilia within Kupffer's vesicle, the organ of laterality of teleost fishes, and within the spinal canal. Moreover, the rotational motion of the cilia in these tissues of ccdc11-deficient embryos was strongly impaired. Our findings demonstrate that CCDC11 has a conserved essential function in cilia of the vertebrate LR organizer. To the best of our knowledge, this is the first ciliary component, which has a differential localization and function in different kinds of motile cilia.

摘要

在脊椎动物中,左右(LR)不对称性的建立依赖于LR组织者内由纤毛驱动的流体流动。CCDC11基因的突变会破坏人类的LR不对称性,但该基因在LR模式形成中的功能目前尚不清楚。我们描述了一名患有完全性内脏反位的患者,其CCDC11基因携带纯合功能丧失突变。我们发现CCDC11是呼吸道纤毛中的一种轴丝蛋白,但在很大程度上对其结构和运动性并非必需。为了研究CCDC11在LR发育中的作用,我们研究了该基因的斑马鱼同源物。与人类呼吸道纤毛一样,Ccdc11的缺失会导致斑马鱼肾纤毛运动出现轻微缺陷,尽管该蛋白定位于其轴丝和基部。相比之下,Ccdc11仅定位于硬骨鱼的侧化器官——库普弗小泡内以及椎管内的纤毛基体。此外,ccdc11缺陷胚胎这些组织中的纤毛旋转运动严重受损。我们的研究结果表明,CCDC11在脊椎动物LR组织者的纤毛中具有保守的重要功能。据我们所知,这是第一个在不同类型的运动纤毛中具有不同定位和功能的纤毛成分。

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