In higher eukaryotic cells, microtubules within metaphase and anaphase spindles undergo poleward flux, the slow, poleward movement of tubulin subunits through the spindle microtubule lattice. Although a number of studies have documented this phenomenon across a wide range of model systems, the possibility of poleward flux before nuclear envelope breakdown (NEB) has not been examined. Using a mammalian cell line expressing photoactivatable green fluorescent protein (GFP)-tubulin, we observe microtubule motion, both toward and away from centrosomes, at a wide range of rates (0.5-4.5 microm/min) in prophase cells. Rapid microtubule motion in both directions is dynein dependent. In contrast, slow microtubule motion, which occurs at rates consistent with metaphase flux, is insensitive to inhibition of dynein but sensitive to perturbation of Eg5 and Kif2a, two proteins with previously documented roles in flux. Our results demonstrate that microtubules in prophase cells are unexpectedly dynamic and that a subpopulation of these microtubules shows motion that is consistent with flux. We propose that the marked reduction in rate and directionality of microtubule motion from prophase to metaphase results from changes in microtubule organization during spindle formation.
Prophase microtubule arrays undergo flux-like behavior in mammalian cells.
哺乳动物细胞中,前期微管阵列表现出类似通量的行为
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作者:Ferenz Nick P, Wadsworth Patricia
| 期刊: | Molecular Biology of the Cell | 影响因子: | 2.700 |
| 时间: | 2007 | 起止号: | 2007 Oct;18(10):3993-4002 |
| doi: | 10.1091/mbc.e07-05-0420 | 研究方向: | 细胞生物学 |
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