IMoPA, CNRS, Université de Lorraine, Nancy F-54000, France.
iBET, Instituto de Biologia Experimental e Tecnológica, Apartado 12, 2781-901 Oeiras, Portugal; Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, Av. da República, 2780-157 Oeiras, Portugal.
J Mol Biol. 2022 Oct 15;434(19):167760. doi: 10.1016/j.jmb.2022.167760. Epub 2022 Jul 25.
DPCD is a protein that may play a role in cilia formation and whose absence leads to primary ciliary dyskinesia (PCD), a rare disease caused by impairment of ciliated cells. Except for high-throughput studies that identified DPCD as a possible RUVBL1 (R1) and RUVBL2 (R2) partner, no in-depth cellular, biochemical, and structural investigation involving DPCD have been reported so far. R1 and R2 proteins are ubiquitous highly conserved AAA + family ATPases that assemble and mature a plethora of macromolecular complexes and are pivotal in numerous cellular processes, especially by guaranteeing a co-chaperoning function within R2TP or R2TP-like machineries. In the present study, we identified DPCD as a new R1R2 partner in vivo. We show that DPCD interacts directly with R1 and R2 in vitro and in cells. We characterized the physico-chemical properties of DPCD in solution and built a 3D model of DPCD. In addition, we used a variety of orthogonal biophysical techniques including small-angle X-ray scattering, structural mass spectrometry and electron microscopy to assess the molecular determinants of DPCD interaction with R1R2. Interestingly, DPCD disrupts the dodecameric state of R1R2 complex upon binding and this interaction occurs mainly via the DII domains of R1R2.
DPCD 是一种可能在纤毛形成中发挥作用的蛋白质,其缺失会导致原发性纤毛运动障碍(PCD),这是一种由纤毛细胞功能障碍引起的罕见疾病。除了高通量研究鉴定 DPCD 可能是 RUVBL1(R1)和 RUVBL2(R2)的伴侣外,目前尚未报道涉及 DPCD 的深入细胞、生化和结构研究。R1 和 R2 蛋白是普遍存在的高度保守的 AAA+家族 ATP 酶,它们组装和成熟多种大分子复合物,在许多细胞过程中起着关键作用,特别是通过在 R2TP 或 R2TP 样机制内保证共伴侣功能。在本研究中,我们在体内鉴定 DPCD 为新的 R1R2 伴侣。我们表明 DPCD 在体外和细胞中直接与 R1 和 R2 相互作用。我们在溶液中表征了 DPCD 的物理化学性质,并构建了 DPCD 的 3D 模型。此外,我们使用了多种正交生物物理技术,包括小角度 X 射线散射、结构质谱和电子显微镜,来评估 DPCD 与 R1R2 相互作用的分子决定因素。有趣的是,DPCD 在结合时会破坏 R1R2 复合物的十二聚体状态,这种相互作用主要通过 R1R2 的 DII 结构域发生。