Yuanyuan Li, Wenyan Xu, Yubao Cheng, Lydia Djenoune, Chuzhi Zhuang, Andrew Lee Cox, Clemente J Britto, Shiaulou Yuan, Siyuan Wang, Zhaoxia Sun
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The formation of these mRNA foci and their colocalization relies on HC translation. We observe that a previously identified DNAAF assembly, containing the DNAAF Lrrc6 and cochaperones Ruvbl1 and Ruvbl2, colocalizes with these HC foci, and is also dependent on HC translation. We additionally show that Ruvbl1 is required for the recruitment of Lrrc6 into the HC foci and that both proteins function cotranslationally. 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引用次数: 0
摘要
轴突动力蛋白是驱动纤毛运动的大分子机器,它在轴突动力蛋白轴突组装因子(DNAAFs)的帮助下在细胞质中组装。这些 DNAAFs 定位于细胞膜病灶中,被认为是通过液-液相分离形成的。然而,DNAAF灶形成的功能意义,以及多种成分的产生和组装如何在如此巨大的规模上如此有效地协调,仍然不清楚。在这里,我们揭示了一个富含翻译重链(HCs)和DNAAFs的轴突动力蛋白生产和组装中心。我们发现,编码动力蛋白外臂相互作用的重链的 mRNA 与新生重链一起聚集在细胞膜病灶中。这些 mRNA 病灶的形成及其共聚依赖于 HC 的翻译。我们观察到,先前确定的 DNAAF 集合(包含 DNAAF Lrrc6 以及辅助伴侣 Ruvbl1 和 Ruvbl2)与这些 HC 病灶聚集在一起,并且也依赖于 HC 翻译。此外,我们还发现,Lrrc6被招募到HC病灶需要Ruvbl1,而且这两种蛋白具有共翻译功能。我们提出,这些 DNAAF 病灶是通过正在翻译的 HC、核糖体和编码 mRNA 之间的稳定相互作用锚定的,然后是辅助伴侣和组装因子的共翻译分子凝结,从而提供了一种潜在的机制来大规模协调 HC 的翻译、折叠和组装。
Cotranslational molecular condensation of cochaperones and assembly factors facilitates axonemal dynein biogenesis.
Axonemal dynein, the macromolecular machine that powers ciliary motility, assembles in the cytosol with the help of dynein axonemal assembly factors (DNAAFs). These DNAAFs localize in cytosolic foci thought to form via liquid-liquid phase separation. However, the functional significance of DNAAF foci formation and how the production and assembly of multiple components are so efficiently coordinated, at such enormous scale, remain unclear. Here, we unveil an axonemal dynein production and assembly hub enriched with translating heavy chains (HCs) and DNAAFs. We show that mRNAs encoding interacting HCs of outer dynein arms colocalize in cytosolic foci, along with nascent HCs. The formation of these mRNA foci and their colocalization relies on HC translation. We observe that a previously identified DNAAF assembly, containing the DNAAF Lrrc6 and cochaperones Ruvbl1 and Ruvbl2, colocalizes with these HC foci, and is also dependent on HC translation. We additionally show that Ruvbl1 is required for the recruitment of Lrrc6 into the HC foci and that both proteins function cotranslationally. We propose that these DNAAF foci are anchored by stable interactions between translating HCs, ribosomes, and encoding mRNAs, followed by cotranslational molecular condensation of cochaperones and assembly factors, providing a potential mechanism that coordinates HC translation, folding, and assembly at scale.
期刊介绍:
The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.