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PMID: 2298810 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Poleward force at the kinetochore in metaphase depends on the number of kinetochore microtubules.

The Journal of cell biology ·Vol. 110 ·No. 2 ·1990-02-00 ·Pages 391-404

Hays TS, Salmon ED

Abstract

To examine the dependence of poleward force at a kinetochore on the number of kinetochore microtubules (kMTs), we altered the normal balance in the number of microtubules at opposing homologous kinetochores in meiosis I grasshopper spermatocytes at metaphase with a focused laser microbeam. Observations were made with light and electron microscopy. Irradiations that partially damaged one homologous kinetochore caused the bivalent chromosome to shift to a new equilibrium position closer to the pole to which the unirradiated kinetochore was tethered; the greater the dose of irradiation, the farther the chromosome moved. The number of kMTs on the irradiated kinetochore decreased with severity of irradiation, while the number of kMTs on the unirradiated kinetochore remained constant and independent of chromosome-to-pole distance. Assuming a balance of forces on the chromosome at congression equilibrium, our results demonstrate that the net poleward force on a chromosome depends on the number of kMTs and the distance from the pole. In contrast, the velocity of chromosome movement showed little dependence on the number of kMTs. Possible mechanisms which explain the relationship between the poleward force at a kinetochore, the number of kinetochore microtubules, and the lengths of the kinetochore fibers at congression equilibrium include a "traction fiber model" in which poleward force producers are distributed along the length of the kinetochore fibers, or a "kinetochore motor-polar ejection model" in which force producers located at or near the kinetochore pull the chromosomes poleward along the kMTs and against an ejection force that is produced by the polar microtubule array and increases in strength toward the pole.

MeSH Terms
Animals Centrioles/physiology,ultrastructure Centromere/physiology,radiation effects,ultrastructure Chromosomes/physiology,radiation effects,ultrastructure Grasshoppers Lasers Male Meiosis/physiology Metaphase/physiology,radiation effects Microscopy, Electron Microtubules/physiology,radiation effects,ultrastructure Spermatozoa/cytology,physiology,ultrastructure Spindle Apparatus/physiology,radiation effects,ultrastructure
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Hays T S
Biology Department, University of North Carolina, Chapel Hill 27514.
Salmon E D
References (40)
40 references, click to expand
  1. Chromosomes move poleward in anaphase along stationary microtubules that coordinately disassemble from their kinetochore ends.
    J Cell Biol. 1987 Jan;104(1):9-18 PMID: 3793763
  2. Structure of kinetochore fibers: microtubule continuity and inter-microtubule bridges.
    Chromosoma. 1981;83(4):523-40 PMID: 7196830
  3. Irradiation of parts of individual cells. II. Effects of an ultraviolet microbeam focused on parts of chromosomes.
    Science. 1954 Aug 6;120(3110):197-9 PMID: 13186812
  4. Opposite end assembly and disassembly of microtubules at steady state in vitro.
    Cell. 1978 Jan;13(1):1-8 PMID: 620419
  5. The formation, structure, and composition of the mammalian kinetochore and kinetochore fiber.
    Int Rev Cytol. 1982;79:1-58 PMID: 6185450
  6. Laser microsurgery in cell and developmental biology.
    Science. 1981 Jul 31;213(4507):505-13 PMID: 7017933
  7. Bioenergetics and kinetics of microtubule and actin filament assembly-disassembly.
    Int Rev Cytol. 1982;78:1-125 PMID: 6128332
  8. Do anaphase chromosomes chew their way to the pole or are they pulled by actin?
    J Cell Sci. 1988 Dec;91 ( Pt 4):449-53 PMID: 3255751
  9. Identification of kinesin in sea urchin eggs, and evidence for its localization in the mitotic spindle.
    Nature. 1985 Dec 5-11;318(6045):483-6 PMID: 2933590
  10. Sites of microtubule assembly and disassembly in the mitotic spindle.
    Cell. 1986 May 23;45(4):515-27 PMID: 3708686
  11. Electron microscopy of spermatocytes previously studied in life: methods and some observations on micromanipulated chromosomes.
    J Cell Sci. 1979 Feb;35:87-104 PMID: 370131
  12. Cooperation of kinetochores and pole in the establishment of monopolar mitotic apparatus.
    Proc Natl Acad Sci U S A. 1981 Jan;78(1):377-81 PMID: 6941253
  13. Dynamic instability of microtubules.
    Bioessays. 1987 Oct;7(4):149-54 PMID: 3318820
  14. Traction force on a kinetochore at metaphase acts as a linear function of kinetochore fiber length.
    J Cell Biol. 1982 May;93(2):374-89 PMID: 7096444
  15. Chromosome behavior after laser microirradiation of a single kinetochore in mitotic PtK2 cells.
    J Cell Biol. 1981 Mar;88(3):543-53 PMID: 7194343
  16. Rapid rate of tubulin dissociation from microtubules in the mitotic spindle in vivo measured by blocking polymerization with colchicine.
    J Cell Biol. 1984 Sep;99(3):1066-75 PMID: 6470037
  17. Does actin produce the force that moves a chromosome to the pole during anaphase?
    Can J Biochem Cell Biol. 1985 Jun;63(6):585-98 PMID: 3899332
  18. Spindle microtubules and their mechanical associations after micromanipulation in anaphase.
    J Cell Biol. 1982 Oct;95(1):91-104 PMID: 6890559
  19. Micromanipulation studies of chromosome movement. I. Chromosome-spindle attachment and the mechanical properties of chromosomal spindle fibers.
    J Cell Biol. 1979 Aug;82(2):528-41 PMID: 479315
  20. CHROMOSOME VELOCITY DURING MITOSIS AS A FUNCTION OF CHROMOSOME SIZE AND POSITION.
    J Cell Biol. 1965 Apr;25:SUPPL:119-35 PMID: 14342826
  21. Measurements of the force produced by the mitotic spindle in anaphase.
    J Cell Biol. 1983 Aug;97(2):542-8 PMID: 6885908
  22. Oscillatory movements of monooriented chromosomes and their position relative to the spindle pole result from the ejection properties of the aster and half-spindle.
    J Cell Biol. 1986 Aug;103(2):581-91 PMID: 3733881
  23. Microtubules of the kinetochore fiber turn over in metaphase but not in anaphase.
    J Cell Biol. 1989 Aug;109(2):653-62 PMID: 2668301
  24. Flexural rigidity of singlet microtubules estimated from statistical analysis of their contour lengths and end-to-end distances.
    Biochim Biophys Acta. 1983 Jan 25;755(2):257-62 PMID: 6681986
  25. Unorthodox mitosis in Trichonympha agilis: kinetochore differentiation and chromosome movement.
    J Cell Sci. 1973 Sep;13(2):511-52 PMID: 4760596
  26. The total length of spindle microtubules depends on the number of chromosomes present.
    J Cell Biol. 1985 Jan;100(1):1-7 PMID: 4038398
  27. Video digitizer analysis of birefringence along the lengths of single chromosomal spindle fibres. II. Crane-fly spermatocyte chromosomal spindle fibres are not temperature-labile.
    J Cell Sci. 1984 Jan;65:41-60 PMID: 6715428
  28. The forces that move chromosomes in mitosis.
    Annu Rev Biophys Biophys Chem. 1988;17:431-49 PMID: 3293594
  29. Cellular mechanisms of chromosome distribution.
    Int Rev Cytol. 1970;:Suppl 2:1-173 PMID: 4946097
  30. Kinetochores are transported poleward along a single astral microtubule during chromosome attachment to the spindle in newt lung cells.
    J Cell Biol. 1990 Jan;110(1):81-95 PMID: 2295685
  31. Polewards microtubule flux in the mitotic spindle: evidence from photoactivation of fluorescence.
    J Cell Biol. 1989 Aug;109(2):637-52 PMID: 2760109
  32. Identification of a novel force-generating protein, kinesin, involved in microtubule-based motility.
    Cell. 1985 Aug;42(1):39-50 PMID: 3926325
  33. On the mechanism of prometaphase congression: chromosome velocity as a function of position on the spindle.
    Chromosoma. 1978 Nov 22;69(2):231-41 PMID: 743900
  34. Quantitative studies on the polarization optical properties of living cells II. The role of microtubules in birefringence of the spindle of the sea urchin egg.
    J Cell Biol. 1981 Apr;89(1):121-30 PMID: 7228897
  35. Functional autonomy of monopolar spindle and evidence for oscillatory movement in mitosis.
    J Cell Biol. 1982 Apr;93(1):33-48 PMID: 7068758
  36. Functional implications of cold-stable microtubules in kinetochore fibers of insect spermatocytes during anaphase.
    J Cell Biol. 1980 Jun;85(3):853-65 PMID: 7391142
  37. Microtubular origin of mitotic spindle form birefringence. Demonstration of the applicability of Wiener's equation.
    J Cell Biol. 1975 Dec;67(3):501-17 PMID: 1238403
  38. Organization of spindle microtubules in Ochromonas danica.
    J Cell Biol. 1980 Dec;87(3 Pt 1):531-45 PMID: 7462315
  39. Spindle microtubules: thermodynamics of in vivo assembly and role in chromosome movement.
    Ann N Y Acad Sci. 1975 Jun 30;253:383-406 PMID: 1096721
  40. Polewards chromosome movement driven by microtubule depolymerization in vitro.
    Nature. 1988 Feb 11;331(6156):499-504 PMID: 3340202
Article Info
Journal
The Journal of cell biology
Abbr.
J Cell Biol
ISSN
0021-9525
Published
1990-02-00
Pages
391-404
Language
English
Region
United States
NLM ID
0375356
PMCID
PMC2116015
Subset
IM
Grants
NIGMS NIH HHS · GM24364 · United States
NCRR NIH HHS · RR 01192 · United States
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