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Mitotic spindle poles are organized by structural and motor proteins in addition to centrosomes.
Gaglio T
,
Dionne MA
,
Compton DA
.
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The focusing of microtubules into mitotic spindle poles in vertebrate somatic cells has been assumed to be the consequence of their nucleation from centrosomes. Contrary to this simple view, in this article we show that an antibody recognizing the light intermediate chain of cytoplasmic dynein (70.1) disrupts both the focused organization of microtubule minus ends and the localization of the nuclear mitotic apparatus protein at spindle poles when injected into cultured cells during metaphase, despite the presence of centrosomes. Examination of the effects of this dynein-specific antibody both in vitro using a cell-free system for mitotic aster assembly and in vivo after injection into cultured cells reveals that in addition to its direct effect on cytoplasmic dynein this antibody reduces the efficiency with which dynactin associates with microtubules, indicating that the antibody perturbs the cooperative binding of dynein and dynactin to microtubules during spindle/aster assembly. These results indicate that microtubule minus ends are focused into spindle poles in vertebrate somatic cells through a mechanism that involves contributions from both centrosomes and structural and microtubule motor proteins. Furthermore, these findings, together with the recent observation that cytoplasmic dynein is required for the formation and maintenance of acentrosomal spindle poles in extracts prepared from Xenopus eggs (Heald, R., R. Tournebize, T. Blank, R. Sandaltzopoulos, P. Becker, A. Hyman, and E. Karsenti. 1996. Nature (Lond.). 382: 420-425) demonstrate that there is a common mechanism for focusing free microtubule minus ends in both centrosomal and acentrosomal spindles. We discuss these observations in the context of a search-capture-focus model for spindle assembly.
Figure 2. The dynein-specific 70.1 antibody blocks the formation of the mitotic spindle. Monkey CV-1 cells were monitored as they progressed through mitosis after microinjection with either a control antibody (A) or the dynein-specific 70.1 monoclonal antibody (B). The mitotic cells were fixed and processed for immunofluorescence microscopy using the DNA-specific dye DAPI, and antibodies specific for tubulin and NuMA as indicated. Bar, 10 μm.
Figure 3. The dynein-specific 70.1 antibody disrupts preassembled mitotic spindles despite the presence of functional centrosomes. Monkey CV-1 cells in metaphase with bipolar mitotic spindles were selected by phase contrast microscopy and microinjected with either a control antibody (A) or the dynein-specific 70.1 monoclonal antibody (BâD). 5 min (B) or 15â30 min (A, C, and D) after microinjection, the cells were fixed and processed for immunofluorescence microscopy using the DNA-specific dye DAPI and antibodies specific for tubulin and NuMA as indicated. Arrowheads in C and D indicate centrosomes and arrows in D indicate NuMA. Bar, 10 μm.
Figure 4. The dynein-specific 70.1 antibody causes a reduction in the efficiency with which cytoplasmic dynein associates with the mitotic spindle in vivo. Monkey CV-1 cells in metaphase with bipolar mitotic spindles were selected by phase contrast microscopy and microinjected with either a control antibody (A) or the dynein-specific 70.1 monoclonal antibody (B). The cells were then fixed and processed for immunofluorescence microscopy using the DNA-specific dye DAPI and the 74.1 antibody, which is specific for the light intermediate chain of cytoplasmic dynein as indicated. Bar, 10 μm.
Figure 5. The dynein-specific 70.1 antibody disrupts both the formation and maintenance of mitotic asters assembled in a cell-free mitotic extract. The control antibody (A) and the dynein-specific 70.1 antibody (B and C) were added to a HeLa cell mitotic extract either before (A and B) or after (C) the induction of mitotic aster assembly by the addition of taxol and incubation at 30°C. After incubation, a portion of the sample was fixed and processed for immunofluorescence microscopy (AâC) using antibodies specific for tubulin and NuMA as indicated. The remainder of the sample, in which either the control antibody (154) or the dynein-specific antibody (70.1) were added before (PRE) or after (POST) mitotic aster assembly, was separated into 10,000-g soluble (S) and insoluble (P) fractions. These fractions were subjected to immunoblot analysis using antibodies specific for NuMA, Eg5, cytoplasmic dynein, and dynactin as indicated (D). Bar, 10 μm.
Figure 6. The addition of mAb 70.1 to the cell-free mitotic aster assembly system is more deleterious to mitotic aster assembly than the depletion of cytoplasmic dynein. The cell-free HeLa mitotic extract was depleted using either a preimmune antibody (A) or an Eg5-specific antibody (BâE). The Eg5-depleted samples were further treated by either the depletion of cytoplasmic dynein (C) or the addition of the dynein-specific (D) or control (E) antibodies. After the induction of mitotic aster assembly under these conditions, the samples were fixed and processed for immunofluorescence microscopy using antibodies specific for tubulin and NuMA as indicated. Bar, 10 μm.
Figure 7. The dynein-specific 70.1 antibody causes a reduction in the efficiency with which dynactin associates with the mitotic spindle in vivo. Monkey CV-1 cells in metaphase with bipolar mitotic spindles were selected by phase contrast microscopy and microinjected with either a control antibody (A) or the dynein-specific 70.1 monoclonal antibody (B). The cells were then fixed and processed for immunofluorescence microscopy using the DNA-specific dye DAPI and the 45A antibody, which is specific for the Arp1 subunit of dynactin as indicated. The arrowheads indicate centrosomal staining for dynactin in adjacent uninjected cells, which verifies that these two samples were stained equivalently. Bar, 20 μm.
Figure 8. The search-capture-focus model for mitotic spindle assembly. Microtubules in somatic cells are nucleated from centrosomes that form symmetrical mitotic asters. These microtubules are relatively unstable (dashed lines) and âsearchâ the cytoplasm by continuously converting between growing and shrinking states (arrows). Occasionally a microtubule plus end will contact a kinetochore and be âcapturedâ and stabilized (solid lines). At some point during the search and capture events, some of the microtubules will release from the centrosome, resulting in free microtubule minus ends. These free microtubule minus ends are âfocusedâ at the spindle pole by noncentrosomal proteins, including cytoplasmic dynein, dynactin, NuMA, Eg5, and a minus endâdirected kinesin-related protein. The centrosome is tethered to this focused group of microtubules by the lateral interaction of microtubules within this array and astral microtubules that emanate from the centrosome.
Allan,
Motor proteins: a dynamic duo.
1996, Pubmed
Allan,
Motor proteins: a dynamic duo.
1996,
Pubmed
Bastmeyer,
Immunostaining of spindle components in tipulid spermatocytes using a serum against pericentriolar material.
1986,
Pubmed
Belmont,
Real-time visualization of cell cycle-dependent changes in microtubule dynamics in cytoplasmic extracts.
1990,
Pubmed
,
Xenbase
Blangy,
Phosphorylation by p34cdc2 regulates spindle association of human Eg5, a kinesin-related motor essential for bipolar spindle formation in vivo.
1995,
Pubmed
,
Xenbase
Blose,
10-nm filaments are induced to collapse in living cells microinjected with monoclonal and polyclonal antibodies against tubulin.
1984,
Pubmed
Brenner,
The absence of centrioles from spindle poles of rat kangaroo (PtK2) cells undergoing meiotic-like reduction division in vitro.
1977,
Pubmed
Burke,
A cell free system to study reassembly of the nuclear envelope at the end of mitosis.
1986,
Pubmed
Capecchi,
High efficiency transformation by direct microinjection of DNA into cultured mammalian cells.
1980,
Pubmed
Compton,
NuMA is required for the proper completion of mitosis.
1993,
Pubmed
Compton,
Identification of novel centromere/kinetochore-associated proteins using monoclonal antibodies generated against human mitotic chromosome scaffolds.
1991,
Pubmed
Coue,
Microtubule depolymerization promotes particle and chromosome movement in vitro.
1991,
Pubmed
Debec,
Polar organization of gamma-tubulin in acentriolar mitotic spindles of Drosophila melanogaster cells.
1995,
Pubmed
De Brabander,
Taxol induces the assembly of free microtubules in living cells and blocks the organizing capacity of the centrosomes and kinetochores.
1981,
Pubmed
Dillman,
Differential phosphorylation in vivo of cytoplasmic dynein associated with anterogradely moving organelles.
1994,
Pubmed
Echeverri,
Molecular characterization of the 50-kD subunit of dynactin reveals function for the complex in chromosome alignment and spindle organization during mitosis.
1996,
Pubmed
Endow,
Mutants of the Drosophila ncd microtubule motor protein cause centrosomal and spindle pole defects in mitosis.
1994,
Pubmed
Gaglio,
NuMA is required for the organization of microtubules into aster-like mitotic arrays.
1995,
Pubmed
Gaglio,
Opposing motor activities are required for the organization of the mammalian mitotic spindle pole.
1996,
Pubmed
,
Xenbase
Gill,
Dynactin, a conserved, ubiquitously expressed component of an activator of vesicle motility mediated by cytoplasmic dynein.
1991,
Pubmed
Hayden,
Kinetochores capture astral microtubules during chromosome attachment to the mitotic spindle: direct visualization in live newt lung cells.
1990,
Pubmed
Heald,
Self-organization of microtubules into bipolar spindles around artificial chromosomes in Xenopus egg extracts.
1996,
Pubmed
,
Xenbase
Hiramoto,
Micromanipulation studies of the mitotic apparatus in sand dollar eggs.
1988,
Pubmed
Holy,
Dynamic instability of microtubules as an efficient way to search in space.
1994,
Pubmed
Hyman,
Morphogenetic properties of microtubules and mitotic spindle assembly.
1996,
Pubmed
Inoué,
Force generation by microtubule assembly/disassembly in mitosis and related movements.
1995,
Pubmed
Karki,
Affinity chromatography demonstrates a direct binding between cytoplasmic dynein and the dynactin complex.
1995,
Pubmed
Keating,
Microtubule release from the centrosome.
1997,
Pubmed
Keryer,
Centriole distribution during tripolar mitosis in Chinese hamster ovary cells.
1984,
Pubmed
Kirschner,
Beyond self-assembly: from microtubules to morphogenesis.
1986,
Pubmed
Lohka,
Induction of nuclear envelope breakdown, chromosome condensation, and spindle formation in cell-free extracts.
1985,
Pubmed
,
Xenbase
Maniotis,
Microsurgical removal of centrosomes blocks cell reproduction and centriole generation in BSC-1 cells.
1991,
Pubmed
Mastronarde,
Interpolar spindle microtubules in PTK cells.
1993,
Pubmed
Matthies,
Anastral meiotic spindle morphogenesis: role of the non-claret disjunctional kinesin-like protein.
1996,
Pubmed
Mazia,
Centrosomes and mitotic poles.
1984,
Pubmed
McIntosh,
Mitosis.
1989,
Pubmed
McKim,
Chromosomal control of meiotic cell division.
1995,
Pubmed
Merdes,
A complex of NuMA and cytoplasmic dynein is essential for mitotic spindle assembly.
1996,
Pubmed
,
Xenbase
Mitchison,
Poleward kinetochore fiber movement occurs during both metaphase and anaphase-A in newt lung cell mitosis.
1992,
Pubmed
Mitchison,
Mitosis: basic concepts.
1989,
Pubmed
Mitchison,
Polewards microtubule flux in the mitotic spindle: evidence from photoactivation of fluorescence.
1989,
Pubmed
Moritz,
Microtubule nucleation by gamma-tubulin-containing rings in the centrosome.
1995,
Pubmed
Murray,
Real time observation of anaphase in vitro.
1996,
Pubmed
,
Xenbase
Nicklas,
How cells get the right chromosomes.
1997,
Pubmed
Nicklas,
Mechanically cut mitotic spindles: clean cuts and stable microtubules.
1989,
Pubmed
Nicklas,
The motor for poleward chromosome movement in anaphase is in or near the kinetochore.
1989,
Pubmed
Niclas,
Cell cycle regulation of dynein association with membranes modulates microtubule-based organelle transport.
1996,
Pubmed
,
Xenbase
Paschal,
Homology of the 74-kD cytoplasmic dynein subunit with a flagellar dynein polypeptide suggests an intracellular targeting function.
1992,
Pubmed
Pfarr,
Cytoplasmic dynein is localized to kinetochores during mitosis.
1990,
Pubmed
Pfister,
Differential expression and phosphorylation of the 74-kDa intermediate chains of cytoplasmic dynein in cultured neurons and glia.
1996,
Pubmed
Rieder,
Newt lung epithelial cells: cultivation, use, and advantages for biomedical research.
1990,
Pubmed
Rieder,
Motile kinetochores and polar ejection forces dictate chromosome position on the vertebrate mitotic spindle.
1994,
Pubmed
Rieder,
Mitosis: towards a molecular understanding of chromosome behavior.
1991,
Pubmed
Sawin,
Mitotic spindle organization by a plus-end-directed microtubule motor.
1992,
Pubmed
,
Xenbase
Sawin,
Mitotic spindle assembly by two different pathways in vitro.
1991,
Pubmed
,
Xenbase
Schafer,
Ultrastructural analysis of the dynactin complex: an actin-related protein is a component of a filament that resembles F-actin.
1994,
Pubmed
Schroer,
Actin-related protein 1 and cytoplasmic dynein-based motility - what's the connection?
1996,
Pubmed
Schroer,
Two activators of microtubule-based vesicle transport.
1991,
Pubmed
Steffen,
Aster-free spindle poles in insect spermatocytes: evidence for chromosome-induced spindle formation?
1986,
Pubmed
Steuer,
Localization of cytoplasmic dynein to mitotic spindles and kinetochores.
1990,
Pubmed
Theurkauf,
Meiotic spindle assembly in Drosophila females: behavior of nonexchange chromosomes and the effects of mutations in the nod kinesin-like protein.
1992,
Pubmed
Vaisberg,
Cytoplasmic dynein plays a role in mammalian mitotic spindle formation.
1993,
Pubmed
Vaughan,
Cytoplasmic dynein binds dynactin through a direct interaction between the intermediate chains and p150Glued.
1995,
Pubmed
Verde,
Taxol-induced microtubule asters in mitotic extracts of Xenopus eggs: requirement for phosphorylated factors and cytoplasmic dynein.
1991,
Pubmed
,
Xenbase
Vernos,
Chromosomes take the lead in spindle assembly.
1995,
Pubmed
Walczak,
XCTK2: a kinesin-related protein that promotes mitotic spindle assembly in Xenopus laevis egg extracts.
1997,
Pubmed
,
Xenbase
Waterman-Storer,
The p150Glued component of the dynactin complex binds to both microtubules and the actin-related protein centractin (Arp-1).
1995,
Pubmed
Waters,
Pathways of spindle assembly.
1997,
Pubmed
Waters,
The kinetochore microtubule minus-end disassembly associated with poleward flux produces a force that can do work.
1996,
Pubmed
Wilson,
Evidence that kinetochore microtubules in crane-fly spermatocytes disassemble during anaphase primarily at the poleward end.
1994,
Pubmed
Wolf,
Cytology of Lepidoptera. V. The microtubule cytoskeleton in eupyrene spermatocytes of Ephestia kuehniella (Pyralidae), Inachis io (Nymphalidae), and Orgyia antiqua (Lymantriidae).
1991,
Pubmed
Zhai,
Kinetochore microtubule dynamics and the metaphase-anaphase transition.
1995,
Pubmed
Zhang,
Chromosomes initiate spindle assembly upon experimental dissolution of the nuclear envelope in grasshopper spermatocytes.
1995,
Pubmed
Zhang,
The impact of chromosomes and centrosomes on spindle assembly as observed in living cells.
1995,
Pubmed
Zheng,
Nucleation of microtubule assembly by a gamma-tubulin-containing ring complex.
1995,
Pubmed
,
Xenbase