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首页> 外文期刊>Molecular biology of the cell >A nuclear-derived proteinaceous matrix embeds the microtubule spindle apparatus during mitosis
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A nuclear-derived proteinaceous matrix embeds the microtubule spindle apparatus during mitosis

机译:核衍生的蛋白质基质在有丝分裂过程中嵌入微管纺锤体

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摘要

The concept of a spindle matrix has long been proposed. Whether such a structure exists, however, and what its molecular and structural composition are have remained controversial. In this study, using a live-imaging approach in Drosophila syncytial embryos, we demonstrate that nuclear proteins reorganize during mitosis to form a highly dynamic, viscous spindle matrix that embeds the microtubule spindle apparatus, stretching from pole to pole. We show that this “internal” matrix is a distinct structure from the microtubule spindle and from a lamin B–containing spindle envelope. By injection of 2000-kDa dextran, we show that the disassembling nuclear envelope does not present a diffusion barrier. Furthermore, when microtubules are depolymerized with colchicine just before metaphase the spindle matrix contracts and coalesces around the chromosomes, suggesting that microtubules act as “struts” stretching the spindle matrix. In addition, we demonstrate that the spindle matrix protein Megator requires its coiled-coil amino-terminal domain for spindle matrix localization, suggesting that specific interactions between spindle matrix molecules are necessary for them to form a complex confined to the spindle region. The demonstration of an embedding spindle matrix lays the groundwork for a more complete understanding of microtubule dynamics and of the viscoelastic properties of the spindle during cell division.
机译:长期以来一直提出主轴矩阵的概念。然而,这种结构是否存在以及其分子和结构组成如何仍存在争议。在这项研究中,使用果蝇合胞体胚胎的实时成像方法,我们证明核蛋白在有丝分裂过程中重组,形成一个高动态性的粘性纺锤体基质,该基质嵌入微管纺锤体,从极点延伸到极点。我们表明,这种“内部”基质与微管纺锤体和含有层状B的纺锤体包膜截然不同。通过注射2000 kDa的右旋糖酐,我们显示出可拆卸的核膜不存在扩散障碍。此外,当微管在中期之前与秋水仙碱解聚时,纺锤体基质会收缩并在染色体周围聚结,这表明微管充当了拉伸纺锤体基质的“支柱”。此外,我们证明纺锤体基质蛋白Megator需要其卷曲螺旋氨基末端域来纺锤体基质定位,这表明纺锤体基质分子之间的特定相互作用对于它们形成限定在纺锤体区域的复合物是必需的。嵌入纺锤体矩阵的演示为更完整地了解微管动力学和细胞分裂过程中纺锤体的粘弹性特性奠定了基础。

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