生物
爪蟾
蛋白质组
调节器
细胞生物学
主调节器
中心粒
计算生物学
细胞命运测定
纤毛
系统生物学
电池类型
模式生物
人类蛋白质组计划
运动纤毛
细胞
伴侣(临床)
蛋白质组学
HEK 293细胞
发育生物学
脊椎动物
遗传学
细胞分化
基因表达调控
作者
Camille Boutin,Olivier Rosnet,Marine Touret,Stéphane Audebert,Luc Camoin,Salomé Dussert,Nicolas Brouilly,Virginie Thomé,J.C. Plumail,Denis Fortun,Jean‐Paul Borg,Laurent Kodjabachian
标识
DOI:10.1083/jcb.202506154
摘要
Multiciliated cells (MCCs) are essential for generating directional fluid flow across specialized epithelia in various vertebrate organs. MCC differentiation involves a tightly regulated program characterized by massive centriole amplification. Although transcriptional control of MCC development is well characterized, insights into proteome dynamics have been limited due to the lack of suitable models. Here, we report the generation of a stable inducible MCC line, derived from Xenopus A6 kidney epithelial cells. Upon induction of the master regulator multicilin (MCI), most A6-MCI cells synchronously differentiate into mature MCCs in 48 h. Using this resource, custom antibodies, and super-resolution imaging, we characterized Xenopus deuterosomes, the platforms that allow massive centriole synthesis in vertebrate MCCs. We performed detailed proteomic profiling throughout differentiation, uncovered previously uncharacterized regulators and highlighted a critical role for CDK7 in Xenopus and human MCC differentiation. Our work provides a valuable resource for mechanistic studies of MCC biology and opens avenues to identify novel therapeutic targets for motile ciliopathies.
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