Programs in Cell Biology, Hospital for Sick Children, Toronto, Ontario, Canada; Department of Biochemistry, University of Toronto, Toronto, Ontario, Canada.
Programs in Cell Biology, Hospital for Sick Children, Toronto, Ontario, Canada.
J Biol Chem. 2021 Jan-Jun;296:100680. doi: 10.1016/j.jbc.2021.100680. Epub 2021 Apr 17.
Primary cilia are hubs for several signaling pathways, and disruption in cilia function and formation leads to a range of diseases collectively known as ciliopathies. Both ciliogenesis and cilia maintenance depend on vesicle trafficking along a network of microtubules and actin filaments toward the basal body. The DIAPH (Diaphanous-related) family of formins promote both actin polymerization and microtubule (MT) stability. Recently, we showed that the formin DIAPH1 is involved in ciliogenesis. However, the role of other DIAPH family members in ciliogenesis had not been investigated. Here we show that depletion of either DIAPH2 or DIAPH3 also disrupted ciliogenesis and cilia length. DIAPH3 depletion also reduced trafficking within cilia. To specifically examine the role of DIAPH3 at the base, we used fused full-length DIAPH3 to centrin, which targeted DIAPH3 to the basal body, causing increased trafficking to the ciliary base, an increase in cilia length, and formation of bulbs at the tips of cilia. Additionally, we confirmed that the microtubule-stabilizing properties of DIAPH3 are important for its cilia length functions and trafficking. These results indicate the importance of DIAPH proteins in regulating cilia maintenance. Moreover, defects in ciliogenesis caused by DIAPH depletion could only be rescued by expression of the specific family member depleted, indicating nonredundant roles for these proteins.
初级纤毛是几种信号通路的中心,纤毛功能和形成的中断会导致一系列被称为纤毛病的疾病。纤毛发生和纤毛维持都依赖于沿着微管和肌动蛋白丝网络向基体的囊泡运输。DIAPH(隔膜相关)家族的形成素促进肌动蛋白聚合和微管 (MT) 稳定性。最近,我们表明形成素 DIAPH1 参与纤毛发生。然而,其他 DIAPH 家族成员在纤毛发生中的作用尚未被研究。在这里,我们表明 DIAPH2 或 DIAPH3 的耗竭也破坏了纤毛发生和纤毛长度。DIAPH3 耗竭还减少了纤毛内的运输。为了专门研究 DIAPH3 在基底处的作用,我们使用融合全长 DIAPH3 到中心体,这将 DIAPH3 靶向基体,导致向纤毛基底的运输增加,纤毛长度增加,并在纤毛尖端形成球囊。此外,我们证实 DIAPH3 的微管稳定特性对其纤毛长度功能和运输很重要。这些结果表明 DIAPH 蛋白在调节纤毛维持中的重要性。此外,DIAPH 耗竭引起的纤毛发生缺陷只能通过表达耗竭的特定家族成员来挽救,表明这些蛋白具有非冗余作用。