Diverse inner arm dyneins cooperate with outer arm dyneins to produce ciliary beating. This study demonstrates an expression system for inner arm dyneins in Tetrahymena. The motor domain of inner arm dynein (Dyh8p or Dyh12p) was fused with the tail of outer arm dynein (Dyh3p) and expressed in viable DYH3-knockout (vKO-DYH3) cells. The chimeric dyneins were observed in the oral apparatus and cilia on the cell bodies, and did not change the swimming speed of vKO-DYH3 cells. In a gliding assay, the motor domains of Dyh8p and Dyh12p moved toward the minus ends of microtubules at 0.8 and 0.3 μm/s, respectively. The gliding velocities of Dyh8p and Dyh12p were decreased in 5 mM ATP but not increased in 0.1 or 0.5 mM ADP. This expression system will be useful for molecular studies on diverse inner arm dyneins.
Mutational analyses of axonemal dyneins are useful for elucidating the molecular mechanism of ciliary motility. This study demonstrates a mutation system for characterizing lethal P-loop mutations in Tetrahymena outer arm dynein (Dyh3p). The viable DYH3-knockout (vKO-DYH3) cells isolated in this study enabled the examination of lethal mutations in P-loops 1 and 2. The P1 mutant dynein localized in the oral apparatus and the proximal region of the cilia, and the P2 mutant dynein localized only in the oral apparatus. Both results are different from the localization of wild-type Dyh3p. In addition, a co-precipitation assay showed that the P1 and P2 mutant dyneins did not dissociate from microtubules in ATP plus vanadate or in no-ATP conditions, in contrast to wild-type Dyh3p. This mutation system is useful for further molecular studies of axonemal dyneins and ciliary motility.
Axonemal dyneins are large AAA+ type motor proteins that exhibit unique motor properties during ciliary beating. This study established a mutation system for Tetrahymena outer arm dynein and characterized four nucleotide-binding loops (P-loops; P1-P4) in the alpha heavy chain (Dyh3p). Macronuclear transformation of the mutant DYH3 genes in DYH3-knockout (KO-DYH3) cells enabled P-loop mutations that abolish the ability of nucleotide binding to be stably maintained in the polyploid genome. This mutation system revealed that the P3 and P4 mutant dyneins rescued lethality in macronuclear KO-DYH3 cells and exhibited normal ciliary localization. Intriguingly, however, an in vitro motility assay showed that the P3 mutation abolished the motor activity of Dyh3p, whereas the P4 mutation did not affect the gliding velocity or gliding index of Dyh3p. In contrast, no P1 or P2 mutant cells were isolated from the KO-DYH3 cells, which suggests that nucleotide binding at the P1 and P2 sites is required for the intracellular function of Dyh3p. This mutation system will be useful for further molecular studies of diverse axonemal dyneins and ciliary motility.
Kinesin-5 plays an essential role in spindle formation and function, and serves as a potential target for anti-cancer drugs. The aim of this study was to elucidate the molecular properties of the N-terminal extension of the Schizosaccharomyces pombe kinesin-5, Cut7. This extension is rich in charged amino acids and predicted to be intrinsically disordered. In S. pombe cells, a Cut7 construct lacking half the N-terminal extension failed to localize along the spindle microtubules and formed a monopolar spindle. However, a construct lacking the entire N-terminal extension exhibited normal localization and formed a typical bipolar spindle. In addition, in vitro analyses revealed that the truncated Cut7 constructs demonstrated similar motile velocities and directionalities as the wild-type motor protein, but the microtubule landing rates were significantly reduced. These findings suggest that the N-terminal extension is not required for normal Cut7 intracellular localization or function, but alters the microtubule-binding properties of this protein in vitro.
Cilia and flagella are motile organelles that play various roles in eukaryotic cells. Ciliary movement is driven by axonemal dyneins (outer arm and inner arm dyneins) that bind to peripheral microtubule doublets. Elucidating the molecular mechanism of ciliary movement requires the genetic engineering of axonemal dyneins; however, no expression system for axonemal dyneins has been previously established. This study is the first to purify recombinant axonemal dynein with motile activity. In the ciliated protozoan Tetrahymena, recombinant outer arm dynein purified from ciliary extract was able to slide microtubules in a gliding assay. Furthermore, the recombinant dynein moved processively along microtubules in a single-molecule motility assay. This expression system will be useful for investigating the unique properties of diverse axonemal dyneins and will enable future molecular studies on ciliary movement.
Kinesin-5 is a homotetrameric motor with its motor domain at the N-terminus. Kinesin-5 crosslinks microtubules and functions in separating spindle poles during mitosis. In this study, the motile properties of Cut7, fission yeast kinesin-5, were examined for the first time. In in vitro motility assays, full-length Cut7 moved toward minus-end of microtubules, but the N-terminal half of Cut7 moved toward the opposite direction. Furthermore, additional truncated constructs lacking the N-terminal or C-terminal regions, but still contained the motor domain, did not switch the motile direction. These indicated that Cut7 was a bidirectional motor, and microtubule binding regions at the N-terminus and C-terminus were not involved in its directionality.
•A motor domain-based motility system was established in Tetrahymena outer arm dynein.•The functional motor domain of DYH3 was purified using an in situ digestion method.•The DYH3 motor domain exhibited ATP concentration-dependent inhibition.•The DYH3 tail was not essential for ATP concentration-dependent inhibition.
Axonemal dynein plays a central role in ciliary beating. Recently, a functional expression system of axonemal dynein was established in the ciliated protozoan Tetrahymena. This study identifies biotin carboxyl carrier protein (BCCP) in Tetrahymena and demonstrates its application in in vitro motility systems of outer arm dynein.
Dyneins are large microtubule-based motor complexes that power a range of cellular processes including the transport of organelles, as well as the beating of cilia and flagella. The motor domain is located within the dynein heavy chain and comprises an N-terminal mechanical linker element, a central ring of six AAA + modules of which four bind or hydrolyze ATP, and a long stalk extending from the AAA + ring with a microtubule-binding domain (MTBD) at its tip. A crucial mechanism underlying the motile activity of cytoskeletal motor proteins is precise coupling between the ATPase and track-binding activities. In dynein, a stalk region consisting of a long (~ 15 nm) antiparallel coiled coil separates these two activities, which must facilitate communication between them. This communication is mediated by a small degree of helix sliding in the coiled coil. However, no high-resolution structure is available of the entire stalk region including the MTBD. Here, we have reported the structure of the entire stalk region of mouse cytoplasmic dynein in a weak microtubule-binding state, which was determined using X-ray crystallography, and have compared it with the dynein motor domain from Dictyostelium discoideum in a strong microtubule-binding state and with a mouse MTBD with its distal portion of the coiled coil fused to seryl-tRNA synthetase from Thermus thermophilus. Our results strongly support the helix-sliding model based on the complete structure of the dynein stalk with a different form of coiled-coil packing. We also propose a plausible mechanism of helix sliding together with further analysis using molecular dynamics simulations. Our results present the importance of conserved proline residues for an elastic motion of stalk coiled coil and imply the manner of change between high-affinity state and low-affinity state of MTBD.
Cytoplasmic dynein moves on microtubules toward its minus end with 8nm stepping. Dynein motor domain has a ring structure which consists of six AAA modules, and the diameter of the ring is 14 nm. This size is so large as compared with the 8 nm step size, and then question arises whether dynein can walk on a single protofirament of microtubule or dynein uses multiple protofilaments. To address this point, we examined dynein motility using zinc-induced tubulin sheet (Zn-sheet) which has an arrangement of adjacent protofilaments with anti-parallel and opposite orientations. From the structural analysis, the dynein binding sites are revealed to be exposed only at either edge of a Zn-sheet. Previously, we have shown that the Zn-sheet move on the glass surface coated with the dynein or kinesin molecules. Unlike microtubules, Zn-sheets followed the winding path and the tracks are often circular. In this study, we aimed to observe the processive movement of single dynein molecules on the edge of a Zn-sheet by TIRF microscopy. As a result of deliberate preparations, we have successfully observed that single dynein molecules walk on Zn-sheets. The velocity of the movement on Zn-sheets was almost the same as that on microtubules. These results demonstrate that the single protofilament is enough to support dynein motility, and suggest that dynein uses only one protofilament of microtubules as well as one protofilament at the edge of Zn-sheets. Considering the large size of the dynein head, it is hard for the two heads of the dynein molecules to move on a single protofilament by the hand-over-hand mechanism advocated for the two heads of kinesin, and it is necessary to investigate the coordination of the two head of dynein.
We visualized the nucleotide‐dependent behavior of single molecules of mammalian native cytoplasmic dynein using fragments of dynactin p150 with or without its N‐terminal microtubule binding domain. The results indicate that the binding affinity of dynein for microtubules is high in AMP‐PNP, middle in ADP or no nucleotide, and low in ADP·Pi conditions. It is also demonstrated that the microtubule binding domain of dynactin p150 maintains the association of dynein with microtubules without altering the motile property of dynein in the weak binding state. In addition, we observed bidirectional movement of dynein in the presence of ATP as well as in ADP/Vi condition, suggesting that the bidirectional movement is driven by diffusion rather than active transport.
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Osamu Watanabe合作论文数Department of Mathematical and Computing Science
Tokyo Institute of Technology
Japan Chapter of EATCS, the European Association for Theoretical Computer Science.9