Heterodimeric Ciliary Dynein f/I1 Adopts a Distinctive Structure, Providing Insight Into the Autoinhibitory Mechanism Common to the Dynein Family.

Yici Lei, Akira Fukunaga, Hiroshi Imai, Ryosuke Yamamoto, Rieko Shimo-Kon, Shinji Kamimura, Kaoru Mitsuoka, Takako Kato-Minoura, Toshiki Yagi, Takahide Kon
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Abstract

Dyneins are huge motor protein complexes that are essential for cell motility, cell division, and intracellular transport. Dyneins are classified into three major subfamilies, namely cytoplasmic, intraflagellar-transport (IFT), and ciliary dyneins, based on their intracellular localization and functions. Recently, several near-atomic resolution structures have been reported for cytoplasmic/IFT dyneins. In contrast, the structures of ciliary dyneins, as well as their regulatory mechanisms, have yet to be fully elucidated. Here, we isolated a heterodimeric ciliary dynein (IDA-f/I1) from Chlamydomonas reinhardtii, a ciliated green alga, and studied its structure in the presence or absence of ATP by negative-stain electron microscopy and single-particle analysis. Surprisingly, a population of IDA-f adopted a distinctive compact structure, which has been scarcely reported for ciliary dyneins but is very similar to the "phi-particle" structure widely recognized as the autoinhibited/inactivated conformation for cytoplasmic/IFT dyneins. Our results suggest that the inactivation mechanism of dimeric dyneins is conserved in all three dynein subfamilies, regardless of their cellular functions, highlighting the intriguing intrinsic regulatory mechanism that may have been acquired at an early stage in the evolution of dynein motors.

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异二聚体纤毛动力蛋白f/I1采用独特的结构,提供了对动力蛋白家族共同的自抑制机制的见解。
动力蛋白是一种巨大的运动蛋白复合物,对细胞运动、细胞分裂和细胞内运输至关重要。基于细胞内定位和功能,动力蛋白可分为三个主要亚家族,即细胞质、鞭毛内运输(IFT)和纤毛动力蛋白。最近,一些细胞质/IFT动力蛋白的近原子分辨率结构被报道。相比之下,纤毛动力蛋白的结构及其调控机制尚未完全阐明。本研究从纤毛绿藻莱茵衣藻(Chlamydomonas reinhardtii)中分离出一个异二聚体纤毛动力蛋白(IDA-f/I1),并通过负染色电镜和单粒子分析研究了其在ATP存在或不存在的情况下的结构。令人惊讶的是,IDA-f群体采用了一种独特的致密结构,这种结构在纤毛动力蛋白中几乎没有报道,但与被广泛认为是细胞质/IFT动力蛋白的自抑制/失活构象的“phi-particle”结构非常相似。我们的研究结果表明,二聚体动力蛋白的失活机制在所有三个动力蛋白亚家族中都是保守的,无论它们的细胞功能如何,这突出了在动力蛋白马达进化的早期阶段可能获得的有趣的内在调节机制。
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