Home LiteratureArticle Details
PMID: 8858174 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Microtubule dynamics at the G2/M transition: abrupt breakdown of cytoplasmic microtubules at nuclear envelope breakdown and implications for spindle morphogenesis.

The Journal of cell biology ·Vol. 135 ·No. 1 ·1996-10-00 ·Pages 201-14

Zhai Y, Kronebusch PJ, Simon PM, Borisy GG

Abstract

We recently developed a direct fluorescence ratio assay (Zhai, Y., and G.G. Borisy. 1994. J. Cell Sci. 107:881-890) to quantify microtubule (MT) polymer in order to determine if net MT depolymerization occurred upon anaphase onset as the spindle was disassembled. Our results showed no net decrease in polymer, indicating that the disassembly of kinetochore MTs was balanced by assembly of midbody and astral MTs. Thus, the mitosis-interphase transition occurs by a redistribution of tubulin among different classes of MTs at essentially constant polymer level. We now examine the reverse process, the interphase-mitosis transition. Specifically, we quantitated both the level of MT polymer and the dynamics of MTs during the G2/M transition using the fluorescence ratio assay and a fluorescence photoactivation approach, respectively. Prophase cells before nuclear envelope breakdown (NEB) had high levels of MT polymer (62%) similar to that previously reported for random interphase populations (68%). However, prophase cells just after NEB had significantly reduced levels (23%) which recovered as MT attachments to chromosomes were made (prometaphase, 47%; metaphase, 56%). The abrupt reorganization of MTs at NEB was corroborated by anti-tubulin immunofluorescence staining using a variety of fixation protocols. Sensitivity to nocodazole also increased at NEB. Photoactivation analyses of MT dynamics showed a similar abrupt change at NEB, basal rates of MT turnover (pre-NEB) increased post-NEB and then became slower later in mitosis. Our results indicate that the interphase-mitosis (G2/M) transition of the MT array does not occur by a simple redistribution of tubulin at constant polymer level as the mitosis-interphase (M/G1) transition. Rather, an abrupt decrease in MT polymer level and increase in MT dynamics occurs tightly correlated with NEB. A subsequent increase in MT polymer level and decrease in MT dynamics occurs correlated with chromosome attachment. These results carry implications for understanding spindle morphogenesis. They indicate that changes in MT dynamics may cause the steady-state MT polymer level in mitotic cells to be lower than in interphase. We propose that tension exerted on the kMTs may lead to their lengthening and thereby lead to an increase in the MT polymer level as chromosomes attach to the spindle.

MeSH Terms
Animals Cell Line Cytoplasm/metabolism Epithelium Fluorescein Fluoresceins Fluorescent Dyes G2 Phase/physiology LLC-PK1 Cells Lamins Macropodidae Microtubules/drug effects,metabolism Mitosis/physiology Morphogenesis Nocodazole/pharmacology Nuclear Envelope/chemistry,metabolism Nuclear Proteins/analysis Polymers Prophase/physiology Rhodamines Spindle Apparatus/physiology Swine Tubulin/analysis,metabolism
Chemicals
Fluoresceins Fluorescent Dyes Lamins Nuclear Proteins Polymers Rhodamines Tubulin Nocodazole Fluorescein
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Zhai Y
Laboratory of Molecular Biology, University of Wisconsin, Madison 53706, USA.
Kronebusch P J
Simon P M
Borisy G G
References (39)
39 references, click to expand
  1. Control of microtubule dynamics and length by cyclin A- and cyclin B-dependent kinases in Xenopus egg extracts.
    J Cell Biol. 1992 Sep;118(5):1097-108 PMID: 1387400
  2. Distribution of microtubules during centriole separation in rat kangaroo (Potorous) cells.
    Cytobios. 1976;15(57):37-43 PMID: 1001019
  3. The force-producing mechanism for centrosome separation during spindle formation in vertebrates is intrinsic to each aster.
    J Cell Biol. 1993 Jul;122(2):361-72 PMID: 8320259
  4. Directional instability of kinetochore motility during chromosome congression and segregation in mitotic newt lung cells: a push-pull mechanism.
    J Cell Biol. 1993 Aug;122(4):859-75 PMID: 8349735
  5. Identification of katanin, an ATPase that severs and disassembles stable microtubules.
    Cell. 1993 Nov 5;75(3):419-29 PMID: 8221885
  6. Microtubule assembly and kinetochore directional instability in vertebrate monopolar spindles: implications for the mechanism of chromosome congression.
    J Cell Sci. 1994 Jan;107 ( Pt 1):285-97 PMID: 8175915
  7. Quantitative determination of the proportion of microtubule polymer present during the mitosis-interphase transition.
    J Cell Sci. 1994 Apr;107 ( Pt 4):881-90 PMID: 8056844
  8. Microtubule dynamics in fish melanophores.
    J Cell Biol. 1994 Sep;126(6):1455-64 PMID: 8089178
  9. Variations in the distribution and migration of centriole duplexes in mitotic PtK2 cells studied by immunofluorescence microscopy.
    J Cell Sci. 1980 Jun;43:177-94 PMID: 6998991
  10. Microtubule treadmills--possible molecular machinery.
    Nature. 1981 Oct 29;293(5835):705-11 PMID: 7027052
  11. Microtubule-nucleating activity of centrosomes in Chinese hamster ovary cells is independent of the centriole cycle but coupled to the mitotic cycle.
    J Cell Biol. 1981 Dec;91(3 Pt 1):822-6 PMID: 7328124
  12. Role of the centrosome in organizing the interphase microtubule array: properties of cytoplasts containing or lacking centrosomes.
    J Cell Biol. 1984 May;98(5):1763-76 PMID: 6725398
  13. Tubulin dynamics in cultured mammalian cells.
    J Cell Biol. 1984 Dec;99(6):2175-86 PMID: 6501419
  14. Beyond self-assembly: from microtubules to morphogenesis.
    Cell. 1986 May 9;45(3):329-42 PMID: 3516413
  15. 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
  16. Microtubule dynamics in vivo: a test of mechanisms of turnover.
    J Cell Biol. 1987 Mar;104(3):395-405 PMID: 3546333
  17. Polewards chromosome movement driven by microtubule depolymerization in vitro.
    Nature. 1988 Feb 11;331(6156):499-504 PMID: 3340202
  18. Polewards microtubule flux in the mitotic spindle: evidence from photoactivation of fluorescence.
    J Cell Biol. 1989 Aug;109(2):637-52 PMID: 2760109
  19. Regulation of microtubule dynamics by cdc2 protein kinase in cell-free extracts of Xenopus eggs.
    Nature. 1990 Jan 18;343(6255):233-8 PMID: 2405278
  20. Stability of microtubule attachment to metaphase kinetochores in PtK1 cells.
    J Cell Sci. 1990 May;96 ( Pt 1):9-15 PMID: 2197288
  21. Real-time visualization of cell cycle-dependent changes in microtubule dynamics in cytoplasmic extracts.
    Cell. 1990 Aug 10;62(3):579-89 PMID: 2379239
  22. Microtubules are stabilized in confluent epithelial cells but not in fibroblasts.
    J Cell Biol. 1990 Dec;111(6 Pt 2):3003-12 PMID: 2269663
  23. Severing of stable microtubules by a mitotically activated protein in Xenopus egg extracts.
    Cell. 1991 Feb 22;64(4):827-39 PMID: 1671762
  24. Microtubule depolymerization promotes particle and chromosome movement in vitro.
    J Cell Biol. 1991 Mar;112(6):1165-75 PMID: 1999468
  25. The three-dimensional architecture of the mitotic spindle, analyzed by confocal fluorescence and electron microscopy.
    J Electron Microsc Tech. 1991 May;18(1):61-73 PMID: 2056352
  26. Human cyclins A and B1 are differentially located in the cell and undergo cell cycle-dependent nuclear transport.
    J Cell Biol. 1991 Oct;115(1):1-17 PMID: 1717476
  27. Pole-to-chromosome movements induced at metaphase: sites of microtubule disassembly.
    J Cell Sci. 1991 Sep;100 ( Pt 1):205-11 PMID: 1795025
  28. Cyclin B2 undergoes cell cycle-dependent nuclear translocation and, when expressed as a non-destructible mutant, causes mitotic arrest in HeLa cells.
    J Cell Biol. 1992 Apr;117(1):213-24 PMID: 1532584
  29. Microtubule dynamics: mechanism, regulation, and function.
    Annu Rev Cell Biol. 1991;7:93-116 PMID: 1809357
  30. Microtubule severing by elongation factor 1 alpha.
    Science. 1994 Oct 14;266(5183):282-5 PMID: 7939665
  31. A new role for motor proteins as couplers to depolymerizing microtubules.
    J Cell Biol. 1995 Jan;128(1-2):1-4 PMID: 7822407
  32. Antibodies to the kinesin motor domain and CENP-E inhibit microtubule depolymerization-dependent motion of chromosomes in vitro.
    J Cell Biol. 1995 Jan;128(1-2):107-15 PMID: 7822408
  33. Cyclin B interaction with microtubule-associated protein 4 (MAP4) targets p34cdc2 kinase to microtubules and is a potential regulator of M-phase microtubule dynamics.
    J Cell Biol. 1995 Mar;128(5):849-62 PMID: 7876309
  34. The impact of chromosomes and centrosomes on spindle assembly as observed in living cells.
    J Cell Biol. 1995 Jun;129(5):1287-300 PMID: 7775575
  35. Kinetochore microtubule dynamics and the metaphase-anaphase transition.
    J Cell Biol. 1995 Nov;131(3):721-34 PMID: 7593192
  36. Kinetochore motility after severing between sister centromeres using laser microsurgery: evidence that kinetochore directional instability and position is regulated by tension.
    J Cell Sci. 1995 Jul;108 ( Pt 7):2537-48 PMID: 7593295
  37. The dynamics of reconstitution of microtubules around the cell center after cooling.
    Eur J Cell Biol. 1983 May;30(2):149-53 PMID: 11601427
  38. Cell motility by labile association of molecules. The nature of mitotic spindle fibers and their role in chromosome movement.
    J Gen Physiol. 1967 Jul;50(6):Suppl:259-92 PMID: 6058222
  39. A novel homo-oligomeric protein responsible for an MPF-dependent microtubule-severing activity.
    EMBO J. 1992 Dec;11(13):4723-31 PMID: 1361167
Article Info
Journal
The Journal of cell biology
Abbr.
J Cell Biol
ISSN
0021-9525
Published
1996-10-00
Pages
201-14
Language
English
Region
United States
NLM ID
0375356
PMCID
PMC2121030
Subset
IM
Grants
NIGMS NIH HHS · GM 25062 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com