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J Cell Biol
1995 Jan 01;1281-2:81-94. doi: 10.1083/jcb.128.1.81.
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The anatomy of flagellar microtubules: polarity, seam, junctions, and lattice.
Song YH
,
Mandelkow E
.
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Although the overall structures of flagellar and cytoplasmic microtubules are understood, many details have remained a matter of debate. In particular, studies of the arrangement of tubulin subunits have been hampered by the low contrast of the tubulin subunits. This problem can now be addressed by the kinesin decoration technique. We have shown previously that the recombinant kinesin head domain binds to beta-tubulin, thus enhancing the contrast between alpha- and beta-tubulin in the electron microscope; this allows one to study the arrangement of tubulin dimers. Here we describe the lattices of the four different types of microtubules in eukaryotic flagellar axonemes (outer doublet A and B, central pair C1 and C2). They could all be labeled with kinesin head with an 8-nm axial periodicity (the tubulin dimer repeat), and all of them showed the B-surface lattice. This lattice is characterized by a 0.92-nm stagger between adjacent protofilaments. The B-lattice was observed on the axonemal microtubules as well as on extensions made by polymerizing porcine brain tubulin onto axonemal microtubules in the proximal and distal directions. This emphasizes that axonemal microtubules serve as high fidelity templates for seeding microtubules. The presence of a B-lattice implies that there must be a helical discontinuity ("seam") in the wall. This discontinuity is now placed near protofilaments A1 and A2 of the A-tubule, close to the inner junction between A- and B-microtubules. The two junctions differ in structure: the protofilaments of the inner junction (A1-B10) are staggered roughly by half a dimer, those of the outer junction (A10-B1) are roughly in register. Of the two junctions the inner one appears to have the stronger bonds, whereas the outer one is more labile and opens up easily, generating "composite sheets" with chevron patterns from which the polarity can be deduced (arrow in the plus direction). Decorated microtubules have a clear polarity. We find that all flagellar microtubules have the same polarities. The orientation of the dimers is such that the plus end terminates with a crown of alpha subunits, the minus end terminates with beta subunits which thus could be in contact with gamma-tubulin at the nucleation centers.
Amos,
Arrangement of subunits in flagellar microtubules.
1974, Pubmed
Amos,
Arrangement of subunits in flagellar microtubules.
1974,
Pubmed
Bell,
Preparation and purification of dynein.
1982,
Pubmed
,
Echinobase
Bergen,
Head-to-tail polymerization of microtubules in vitro. Electron microscope analysis of seeded assembly.
1980,
Pubmed
Bernstein,
A new kinesin-like protein (Klp1) localized to a single microtubule of the Chlamydomonas flagellum.
1994,
Pubmed
Bloom,
Motor proteins for cytoplasmic microtubules.
1992,
Pubmed
Brady,
A novel brain ATPase with properties expected for the fast axonal transport motor.
1985,
Pubmed
Crepeau,
Differences in alpha and beta polypeptide chains of tubulin resolved by electron microscopy with image reconstruction.
1978,
Pubmed
Erickson,
Microtubule dynamic instability and GTP hydrolysis.
1992,
Pubmed
Erickson,
Microtubule surface lattice and subunit structure and observations on reassembly.
1974,
Pubmed
Euteneuer,
Polarity of some motility-related microtubules.
1981,
Pubmed
Evans,
Influence of the centrosome on the structure of nucleated microtubules.
1985,
Pubmed
Gelles,
Tracking kinesin-driven movements with nanometre-scale precision.
1988,
Pubmed
Gibbons,
A latent adenosine triphosphatase form of dynein 1 from sea urchin sperm flagella.
1979,
Pubmed
,
Echinobase
Goldsmith,
Conserved beta-tubulin binding domain for the microtubule-associated motors underlying sperm motility and fast axonal transport.
1991,
Pubmed
,
Echinobase
Goldstein,
The kinesin superfamily: tails of functional redundancy.
1991,
Pubmed
Harrison,
Decoration of the microtubule surface by one kinesin head per tubulin heterodimer.
1993,
Pubmed
Hill,
Phase changes at the end of a microtubule with a GTP cap.
1984,
Pubmed
Huang,
Drosophila kinesin motor domain extending to amino acid position 392 is dimeric when expressed in Escherichia coli.
1994,
Pubmed
Kamimura,
High-frequency vibration in flagellar axonemes with amplitudes reflecting the size of tubulin.
1992,
Pubmed
,
Echinobase
Kamimura,
Tubulin protofilaments and kinesin-dependent motility.
1992,
Pubmed
,
Echinobase
Kosik,
The primary structure and analysis of the squid kinesin heavy chain.
1990,
Pubmed
Kuznetsov,
Isolation of a 45-kDa fragment from the kinesin heavy chain with enhanced ATPase and microtubule-binding activities.
1989,
Pubmed
Linck,
Arrangement of tubulin subunits and microtubule-associated proteins in the central-pair microtubule apparatus of squid (Loligo pealei) sperm flagella.
1981,
Pubmed
Linck,
Reassembly of flagellar B (alpha beta) tubulin into singlet microtubules: consequences for cytoplasmic microtubule structure and assembly.
1981,
Pubmed
,
Echinobase
Mandelkow,
Tubulin hoops.
1977,
Pubmed
Mandelkow,
On the surface lattice of microtubules: helix starts, protofilament number, seam, and handedness.
1986,
Pubmed
Mandelkow,
Junctions between microtubule walls.
1979,
Pubmed
McEwen,
Evidence for a mixed lattice in microtubules reassembled in vitro.
1980,
Pubmed
Mitchison,
Localization of an exchangeable GTP binding site at the plus end of microtubules.
1993,
Pubmed
Murray,
Structure of flagellar microtubules.
1991,
Pubmed
Oakley,
Gamma-tubulin: the microtubule organizer?
1992,
Pubmed
Ray,
Kinesin follows the microtubule's protofilament axis.
1993,
Pubmed
Scheele,
Control of the structural fidelity of microtubules by initiation sites.
1982,
Pubmed
Scholey,
Identification of globular mechanochemical heads of kinesin.
1989,
Pubmed
Song,
Recombinant kinesin motor domain binds to beta-tubulin and decorates microtubules with a B surface lattice.
1993,
Pubmed
,
Echinobase
Steffen,
Evidence for tektins in centrioles and axonemal microtubules.
1988,
Pubmed
,
Echinobase
Svoboda,
Direct observation of kinesin stepping by optical trapping interferometry.
1993,
Pubmed
Vale,
Identification of a novel force-generating protein, kinesin, involved in microtubule-based motility.
1985,
Pubmed
Wade,
Cryoelectron microscopy of microtubules.
1993,
Pubmed
Walker,
Cytoplasmic microtubule-associated motors.
1993,
Pubmed
Witman,
Axonemal dyneins.
1992,
Pubmed
Yang,
A three-domain structure of kinesin heavy chain revealed by DNA sequence and microtubule binding analyses.
1989,
Pubmed