纤毛内运输调控纤毛发生及纤毛病的分子机制
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1)扬州大学医学部组织学与胚胎学教研室,扬州 225009;2)扬州大学,江苏省核酸与命运调控高校重点实验室,扬州 225009;3)扬州大学医学部护理学院,扬州 225009

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国家自然科学基金(82371614,82071696)和江苏省研究生科研与实践创新计划(KYCX23-3618)资助项目。


Molecular Mechanisms of Intraflagellar Transport in Regulating ciliogenesis and Ciliopathies
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1)Department of Histology and Embryology, Faculty of Medicine, Yangzhou University, Yangzhou 225009, China;2)Key Laboratory of Nucleic Acids and Cell Fate Regulation of Jiangsu Province, Yangzhou University, Yangzhou 225009, China;3)School of Nursing, Faculty of Medicine, Yangzhou University, Yangzhou 225009, China

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This work was supported by grants from The National Natural Science Foundation of China (82371614, 82071696) and Research and Practice Innovation Plan for Graduate Students in Jiangsu Province (KYCX23-3618).

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    摘要:

    纤毛内运输(intraflagellar transport,IFT)是纤毛组装、长度维持、信号转导及蛋白质组稳态调控的核心机制。由于多数纤毛蛋白在胞质中合成,而纤毛又受到过渡区选择性屏障限制,结构蛋白、膜蛋白和信号分子需要依赖IFT系统在纤毛基部、轴丝、顶端和胞质之间进行定向转运与循环更新。IFT系统主要由IFT-A复合体、IFT-B复合体、驱动蛋白2(kinesin-2)、动力蛋白2(dynein-2)以及Bardet-Biedl综合征蛋白复合体(Bardet-Biedl syndrome protein complex,BBSome)等模块组成,通过顺行和逆行运输完成不同货物的动态转运。近年来,冷冻电子显微镜、原位断层扫描和单分子成像等技术的发展,揭示了IFT系统在纤毛基部列车装配、轴丝微管轨道运行、纤毛顶端转换以及货物回收中的分子机制。IFT-B作为主要的列车骨架,参与货物装载、马达耦联和顺行运输启动;IFT-A参与逆行运输、膜蛋白适配和列车重塑;BBSome则通过与IFT系统可逆结合,调控纤毛膜蛋白分选、信号受体清除和纤毛蛋白质组更新。IFT方向转换与顺行列车解聚、驱动蛋白2解离、动力蛋白2在纤毛顶端激活以及逆行列车重新组装密切相关。在病理机制方面,IFT异常可通过纤毛组装与结构缺陷、货物定位异常、信号通路失衡以及货物卸载和回收障碍等途径诱发纤毛病,累及视网膜、肾脏、骨骼、呼吸道、生殖系统及神经代谢系统。总体来看,IFT是由轴丝结构、马达活性、货物选择和细胞信号共同调控的动态运输系统。深入解析IFT调控机制及其与疾病表型的关系,有助于推动纤毛病的机制分型、遗传诊断和精准干预。

    Abstract:

    Intraflagellar transport (IFT) is a core mechanism for ciliary assembly, length maintenance, ciliary proteome homeostasis and signal transduction. Most proteins required for ciliary structure and function are synthesized in the cytoplasm. Because the ciliary compartment is separated from the cell body by the selective barrier of the transition zone, these proteins cannot freely equilibrate between the cytoplasm and the cilium. Consequently, axonemal components, membrane proteins and signaling molecules must be actively imported into cilia, retrieved from the ciliary compartment, and recycled or degraded through highly ordered transport and sorting pathways. The IFT system is mainly composed of the IFT-A complex, IFT-B complex, kinesin-2, dynein-2 and the Bardet-Biedl syndrome protein complex (BBSome). Through coordinated anterograde and retrograde transport, these modules mediate the dynamic trafficking of different classes of ciliary cargoes. Anterograde transport delivers structural and membrane-associated components from the ciliary base toward the ciliary tip, whereas retrograde transport retrieves IFT components and selected cargoes back toward the ciliary base and cytoplasm. In this way, IFT not only supports the construction of the axoneme but also contributes to the maintenance of ciliary composition and the regulation of ciliary signaling activity. In recent years, advances in cryo-electron microscopy, in situ cryo-electron tomography and single-molecule imaging have greatly improved our understanding of the molecular mechanisms underlying IFT. These approaches have revealed how IFT trains are assembled at the ciliary base, how they move along axonemal microtubule tracks, how they undergo directional switching at the ciliary tip, and how cargoes are retrieved and recycled. Among the IFT modules, IFT-B acts as the major scaffold of IFT trains. It participates in cargo loading, motor coupling and initiation of anterograde transport. IFT-A is involved in retrograde transport, membrane protein adaptor function and train remodeling. The BBSome, through reversible association with the IFT system, regulates ciliary membrane protein sorting, signaling receptor clearance and renewal of the ciliary proteome. These functions indicate that the IFT machinery is not a simple linear transport pathway, but rather a dynamic and reconfigurable transport system. The conversion of transport direction is a key step in the IFT cycle. This process is closely associated with disassembly of anterograde trains, dissociation of kinesin-2, activation of dynein-2 at the ciliary tip and reassembly of retrograde trains. In terms of pathogenic mechanisms, IFT abnormalities may cause ciliopathies through four major pathways: defects in ciliary assembly and structure, abnormal localization of ciliary cargoes, dysregulation of signaling pathways, and impaired cargo unloading and retrieval. These defects can affect multiple organ systems, including the retina, kidney, skeleton, respiratory tract, reproductive system, and neuro-metabolic system. Current therapeutic strategies are still mainly based on symptomatic support and maintenance of organ function. Overall, IFT is a dynamic transport system jointly regulated by axonemal structure, motor activity, cargo selection and cellular signaling. It links ciliary architecture with protein turnover and signaling regulation, thereby playing a fundamental role in both ciliary homeostasis and ciliopathy pathogenesis. Further elucidation of IFT regulatory mechanisms and their relationships with disease phenotypes will help promote mechanism-based classification, genetic diagnosis and precision intervention for ciliopathies.

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葛婷婷,杨凡,牛长敏,郑英.纤毛内运输调控纤毛发生及纤毛病的分子机制[J].生物化学与生物物理进展,2026,53(8):2179-2193 GE Ting-Ting, YANG Fan, NIU Chang-Min, ZHENG Ying. Molecular Mechanisms of Intraflagellar Transport in Regulating ciliogenesis and Ciliopathies[J]. Progress in Biochemistry and Biophysics,2026,53(8):2179-2193

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  • 收稿日期:2026-05-05
  • 最后修改日期:2026-07-01
  • 录用日期:2026-06-25
  • 在线发布日期: 2026-06-26
  • 出版日期: 2026-08-28
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