原发性睫状体运动障碍
纤毛
纤毛病
原位
细胞生物学
生物
化学
微管
过渡(遗传学)
蛋白质组
纤毛形成
生物发生
分子生物学
连接器
粘液纤毛清除率
表型
基因
运动纤毛
生物物理学
遗传学
突变
动力蛋白
鞭毛
作者
Haixia Zhou,Lea Terbeck,Andrew C. Berical,Marine Brunet,Sven M. Lange,Joel Anderson,Heike Olbrich,Diana C. Bracht,Kai Wohlgemuth,Cynthia Rieck,Johanna Raidt,Jürgen Klingauf,Sivagurunathan Sutharsan,Huda Mussaffi,Dario Prais,Victoria Dunphy,Sachiko T. Homma,Paul Guichard,Virginie Hamel,Finn J Hawkins
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-09-10
卷期号:: eaei5957-eaei5957
标识
DOI:10.1126/science.aei5957
摘要
The ciliary transition zone (TZ) regulates ciliary proteome composition, yet its molecular architecture, protein content, and contribution to motile ciliopathies remain poorly defined. We applied in situ cryo-electron tomography and subtomogram averaging to human multiciliated epithelial cells. This approach resolved TZ-specific doublet microtubules at subnanometer resolution and identified nine constituent proteins. We identified that ECT2L and DZANK1 form the major linker complexes between adjacent TZ doublet microtubules. Biallelic loss-of-function variants in either gene cause primary ciliary dyskinesia. ECT2L and DZANK1 deficiency disrupted TZ architecture, caused microtubular abnormalities and abnormal bulbous ciliary tips, and impaired mucociliary clearance. These findings establish a direct genetic link between TZ defects and human motile ciliopathy, and illustrate how in situ structural biology can uncover mechanisms of human disease.
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