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Yeast telomerase and the SUN domain protein Mps3 anchor telomeres and repress subtelomeric recombination.酵母端粒酶与SUN结构域蛋白Mps3锚定端粒并抑制亚端粒重组。
Genes Dev. 2009 Apr 15;23(8):928-38. doi: 10.1101/gad.1787509.
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Mechanisms that regulate localization of a DNA double-strand break to the nuclear periphery.调控DNA双链断裂定位于核周的机制。
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Self-organization of dynein motors generates meiotic nuclear oscillations.动力蛋白马达的自组织产生减数分裂核振荡。
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Actin dynamics and functions in the interphase nucleus: moving toward an understanding of nuclear polymeric actin.肌动蛋白在间期细胞核中的动力学及功能:迈向对核内聚合肌动蛋白的理解
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A nuclear-envelope bridge positions nuclei and moves chromosomes.核膜桥定位细胞核并移动染色体。
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Chromosome-wide Rad51 spreading and SUMO-H2A.Z-dependent chromosome fixation in response to a persistent DNA double-strand break.响应持续性DNA双链断裂时全染色体范围的Rad51扩散及SUMO-H2A.Z依赖性染色体固定
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Mechanotransduction at a distance: mechanically coupling the extracellular matrix with the nucleus.远距离机械转导:将细胞外基质与细胞核进行机械偶联
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Fraying at the edge mouse models of diseases resulting from defects at the nuclear periphery.核周缺陷导致的疾病边缘磨损小鼠模型。
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有丝分裂过程中的动态染色体运动:消除不必要连接的一种方式?

Dynamic chromosome movements during meiosis: a way to eliminate unwanted connections?

机构信息

CNRS URA2171, Institut Pasteur, Unité de Génétique Moléculaire des Levures, 25 rue du Dr. Roux, 75015 Paris, France.

出版信息

Trends Cell Biol. 2009 Dec;19(12):716-24. doi: 10.1016/j.tcb.2009.09.007. Epub 2009 Oct 23.

DOI:10.1016/j.tcb.2009.09.007
PMID:19854056
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2787882/
Abstract

Dramatic chromosome motion is a characteristic of mid-prophase of meiosis that is observed across broadly divergent eukaryotic phyla. Although the specific mechanisms underlying chromosome motions vary among organisms studied to date, the outcome is similar in all cases: vigorous back-and-forth movement (as fast as approximately 1mum/sec for budding yeast), led by chromosome ends (or near-end regions), and directed by cytoskeletal components via direct association through the nuclear envelope. The exact role(s) of these movements remains unknown, although an idea gaining currency is that movement serves as a stringency factor, eliminating unwanted inter-chromosomal associations or entanglements that have arisen as part of the homolog pairing process and, potentially, unwanted associations of chromatin with the nuclear envelope. Turbulent chromosome movements observed during bipolar orientation of chromosomes for segregation could also serve similar roles during mitosis. Recent advances shed light on the contribution of protein complexes involved in the meiotic movements in chromosome dynamics during the mitotic program.

摘要

戏剧性的染色体运动是减数分裂中期的一个特征,在广泛不同的真核生物门中都有观察到。尽管迄今为止研究的生物体中染色体运动的具体机制有所不同,但结果在所有情况下都相似:由染色体末端(或近末端区域)驱动的剧烈来回运动(最快可达大约 1mum/sec,对于出芽酵母),并通过核膜通过直接结合由细胞骨架成分引导。这些运动的确切作用尚不清楚,尽管一个越来越流行的观点是,运动作为一个严格因素,消除了不想要的染色体间的相互作用或纠缠,这些相互作用是同源配对过程的一部分,并且可能是染色质与核膜的不想要的相互作用。在分离过程中染色体的双极定向中观察到的动荡染色体运动,在有丝分裂期间也可能具有类似的作用。最近的进展揭示了参与有丝分裂程序中染色体动力学的减数分裂运动的蛋白质复合物的贡献。