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1
Structural requirements and dynamics of mitosin-kinetochore interaction in M phase.有丝分裂期线粒体-动粒相互作用的结构要求和动力学
Mol Cell Biol. 1999 Feb;19(2):1016-24. doi: 10.1128/MCB.19.2.1016.
2
The C terminus of mitosin is essential for its nuclear localization, centromere/kinetochore targeting, and dimerization.
J Biol Chem. 1995 Aug 18;270(33):19545-50. doi: 10.1074/jbc.270.33.19545.
3
Carboxyl terminus of mitosin is sufficient to confer spindle pole localization.有丝分裂纺锤体极蛋白的羧基末端足以赋予纺锤体极定位。
J Cell Biochem. 1997 Sep 15;66(4):441-9.
4
Mitosin/CENP-F is a conserved kinetochore protein subjected to cytoplasmic dynein-mediated poleward transport.有丝分裂素/CENP-F是一种保守的动粒蛋白,受细胞质动力蛋白介导向极运输。
Cell Res. 2003 Aug;13(4):275-83. doi: 10.1038/sj.cr.7290172.
5
Characterization of a novel 350-kilodalton nuclear phosphoprotein that is specifically involved in mitotic-phase progression.一种新的350千道尔顿核磷蛋白的特性分析,该蛋白特异性参与有丝分裂期进程。
Mol Cell Biol. 1995 Sep;15(9):5017-29. doi: 10.1128/MCB.15.9.5017.
6
Distinct centromere domain structures with separate functions demonstrated in live fission yeast cells.在活的裂殖酵母细胞中展示出具有不同功能的独特着丝粒结构域。
J Cell Sci. 2003 Oct 1;116(Pt 19):4035-42. doi: 10.1242/jcs.00707. Epub 2003 Aug 19.
7
Disentangling the molecular determinants for Cenp-F localization to nuclear pores and kinetochores.解析 Cenp-F 定位于核孔和动粒的分子决定因素。
EMBO Rep. 2018 May;19(5). doi: 10.15252/embr.201744742. Epub 2018 Apr 9.
8
Mitosin/CENP-F as a negative regulator of activating transcription factor-4.线粒体丝氨酸/着丝粒蛋白F作为转录激活因子4的负调控因子。
J Biol Chem. 2005 Apr 8;280(14):13973-7. doi: 10.1074/jbc.M414310200. Epub 2005 Jan 26.
9
Nudel modulates kinetochore association and function of cytoplasmic dynein in M phase.Nudel在M期调节细胞质动力蛋白的动粒结合及功能。
Mol Biol Cell. 2007 Jul;18(7):2656-66. doi: 10.1091/mbc.e06-04-0345. Epub 2007 May 9.
10
Coordinated requirements of human topo II and cohesin for metaphase centromere alignment under Mad2-dependent spindle checkpoint surveillance.在Mad2依赖的纺锤体检查点监测下,人类拓扑异构酶II和黏连蛋白对中期着丝粒排列的协同需求。
Mol Biol Cell. 2006 May;17(5):2287-302. doi: 10.1091/mbc.e05-11-1089. Epub 2006 Mar 1.

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1
Centromere Protein F in Tumor Biology: Cancer's Achilles Heel.肿瘤生物学中的着丝粒蛋白F:癌症的致命弱点
Cancer Med. 2025 May;14(10):e70949. doi: 10.1002/cam4.70949.
2
CENPF (+) cancer cells promote malignant progression of early-stage TP53 mutant lung adenocarcinoma.CENPF(+)癌细胞促进早期TP53突变型肺腺癌的恶性进展。
Oncogenesis. 2025 Mar 5;14(1):5. doi: 10.1038/s41389-025-00546-5.
3
Loss of CENPF leads to developmental failure in mouse embryos.着丝粒蛋白 F 的缺失导致小鼠胚胎发育失败。
Cell Cycle. 2019 Oct;18(20):2784-2799. doi: 10.1080/15384101.2019.1661173. Epub 2019 Sep 3.
4
Miro-dependent mitochondrial pool of CENP-F and its farnesylated C-terminal domain are dispensable for normal development in mice.依赖 Miro 的 CENP-F 线粒体池及其法呢基化 C 末端结构域对于小鼠的正常发育并非必需。
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5
Regulation of Cenp-F localization to nuclear pores and kinetochores.调控 Cenp-F 到核孔和动粒的定位。
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6
The kinetochore proteins CENP-E and CENP-F directly and specifically interact with distinct BUB mitotic checkpoint Ser/Thr kinases.着丝粒蛋白 CENP-E 和 CENP-F 直接且特异性地与不同的 BUB 有丝分裂检查点 Ser/Thr 激酶相互作用。
J Biol Chem. 2018 Jun 29;293(26):10084-10101. doi: 10.1074/jbc.RA118.003154. Epub 2018 May 10.
7
Disentangling the molecular determinants for Cenp-F localization to nuclear pores and kinetochores.解析 Cenp-F 定位于核孔和动粒的分子决定因素。
EMBO Rep. 2018 May;19(5). doi: 10.15252/embr.201744742. Epub 2018 Apr 9.
8
Dync1h1 Mutation Causes Proprioceptive Sensory Neuron Loss and Impaired Retrograde Axonal Transport of Dorsal Root Ganglion Neurons.动力蛋白1重链1(Dync1h1)突变导致本体感觉神经元丧失以及背根神经节神经元逆行轴突运输受损。
CNS Neurosci Ther. 2016 Jul;22(7):593-601. doi: 10.1111/cns.12552. Epub 2016 Apr 15.
9
A regulatory effect of INMAP on centromere proteins: antisense INMAP induces CENP-B variation and centromeric halo.INMAP对着丝粒蛋白的调控作用:反义INMAP诱导CENP-B变异和着丝粒晕。
PLoS One. 2014 Mar 14;9(3):e91937. doi: 10.1371/journal.pone.0091937. eCollection 2014.
10
Correlation between centromere protein-F autoantibodies and cancer analyzed by enzyme-linked immunosorbent assay.酶联免疫吸附法分析着丝粒蛋白 F 自身抗体与癌症的相关性。
Mol Cancer. 2013 Aug 26;12(1):95. doi: 10.1186/1476-4598-12-95.

本文引用的文献

1
CENP-E function at kinetochores is essential for chromosome alignment.着丝粒蛋白E(CENP-E)在动粒处的功能对于染色体排列至关重要。
J Cell Biol. 1997 Dec 15;139(6):1373-82. doi: 10.1083/jcb.139.6.1373.
2
Localization of CENP-E in the fibrous corona and outer plate of mammalian kinetochores from prometaphase through anaphase.着丝粒蛋白E在哺乳动物动粒的纤维冠和外板中的定位,从有丝分裂前中期到后期。
Chromosoma. 1997 Dec;106(7):446-55. doi: 10.1007/s004120050266.
3
Immunolocalization of CENP-A suggests a distinct nucleosome structure at the inner kinetochore plate of active centromeres.着丝粒蛋白A的免疫定位表明,在活跃着丝粒的内着丝粒板处存在独特的核小体结构。
Curr Biol. 1997 Nov 1;7(11):901-4. doi: 10.1016/s0960-9822(06)00382-4.
4
Chromatin containing CENP-A and alpha-satellite DNA is a major component of the inner kinetochore plate.含有着丝粒蛋白A(CENP-A)和α-卫星DNA的染色质是内着丝粒板的主要成分。
Curr Biol. 1997 Nov 1;7(11):897-900. doi: 10.1016/s0960-9822(06)00381-2.
5
CENP-E is a plus end-directed kinetochore motor required for metaphase chromosome alignment.着丝粒蛋白E(CENP-E)是一种在中期染色体排列过程中必需的、向微管正端移动的着丝粒马达蛋白。
Cell. 1997 Oct 31;91(3):357-66. doi: 10.1016/s0092-8674(00)80419-5.
6
Carboxyl terminus of mitosin is sufficient to confer spindle pole localization.有丝分裂纺锤体极蛋白的羧基末端足以赋予纺锤体极定位。
J Cell Biochem. 1997 Sep 15;66(4):441-9.
7
Kinetochore localization of murine Bub1 is required for normal mitotic timing and checkpoint response to spindle damage.小鼠Bub1的动粒定位对于正常的有丝分裂时间安排和对纺锤体损伤的检查点反应是必需的。
Cell. 1997 May 30;89(5):727-35. doi: 10.1016/s0092-8674(00)80255-x.
8
Centromeres, checkpoints and chromatid cohesion.着丝粒、检验点与染色单体黏连
Curr Opin Genet Dev. 1997 Apr;7(2):264-73. doi: 10.1016/s0959-437x(97)80137-2.
9
Cell cycle checkpoints: arresting progress in mitosis.细胞周期检查点:阻止有丝分裂进程。
Bioessays. 1997 Mar;19(3):193-7. doi: 10.1002/bies.950190303.
10
Assembly of CENP-A into centromeric chromatin requires a cooperative array of nucleosomal DNA contact sites.将着丝粒蛋白A(CENP-A)组装到着丝粒染色质中需要一系列协同作用的核小体DNA接触位点。
J Cell Biol. 1997 Feb 10;136(3):501-13. doi: 10.1083/jcb.136.3.501.

有丝分裂期线粒体-动粒相互作用的结构要求和动力学

Structural requirements and dynamics of mitosin-kinetochore interaction in M phase.

作者信息

Zhu X

机构信息

Shanghai Research Center of Life Sciences, Chinese Academy of Sciences, Shanghai 200031, China.

出版信息

Mol Cell Biol. 1999 Feb;19(2):1016-24. doi: 10.1128/MCB.19.2.1016.

DOI:10.1128/MCB.19.2.1016
PMID:9891037
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC116032/
Abstract

Mitosin is a 350-kDa human nuclear protein which transiently associates with centromeres and spindle poles in M phase. Ultrastructure studies reveal that it is located at the outer kinetochore plate. In this work, we explored the detailed structural basis and dynamics of the mitosin-kinetochore interaction. Two major regions important for targeting to centromeres were identified by analyzing different deletion mutants expressed in CHO cells: (i) the "core region" between amino acids 2792 and 2887, which was essential for the centromere localization of mitosin; and (ii) the internal repeats between residues 2094 and 2487, which cooperated with the core region to achieve strong mitosin-kinetochore interaction. The core region is characteristic of two leucine zipper motifs. Deletion of either motif abolished the centromere localization activity. In addition, Cys2864, adjacent to the second motif, was also essential for the activity of the core region. In contrast, the internal repeats alone were insufficient for centromere localization. We propose that this region may serve as a regulatory domain to facilitate interaction of the core region with the kinetochore. We showed that mitosin molecules entering nuclei after nuclear envelope breakdown (NEBD) were not assembled onto kinetochores efficiently, suggesting that the mitosin-kinetochore interaction is stabilized prior to NEBD. This result supports the idea of an ordered process for kinetochore assembly. Our data also suggest that mitosin might interact with chromatin in interphase. Evidence for coordinated regulation between the centromere-targeting and the putative chromatin-binding activities is also provided.

摘要

Mitosin是一种350千道尔顿的人类核蛋白,在M期与着丝粒和纺锤体极短暂结合。超微结构研究表明,它位于动粒外板。在这项工作中,我们探索了mitosin与动粒相互作用的详细结构基础和动力学。通过分析在CHO细胞中表达的不同缺失突变体,确定了两个对于靶向着丝粒很重要的主要区域:(i)氨基酸2792和2887之间的“核心区域”,这对于mitosin的着丝粒定位至关重要;(ii)残基2094和2487之间的内部重复序列,它与核心区域协同作用以实现强大的mitosin-动粒相互作用。核心区域具有两个亮氨酸拉链基序的特征。删除任何一个基序都会消除着丝粒定位活性。此外,与第二个基序相邻的Cys2864对于核心区域的活性也至关重要。相比之下,单独的内部重复序列不足以进行着丝粒定位。我们提出该区域可能作为一个调节结构域,以促进核心区域与动粒的相互作用。我们表明,核膜破裂(NEBD)后进入细胞核的mitosin分子没有有效地组装到动粒上,这表明mitosin-动粒相互作用在NEBD之前就已稳定。这一结果支持了动粒组装有序过程的观点。我们的数据还表明,mitosin可能在间期与染色质相互作用。还提供了着丝粒靶向和假定的染色质结合活性之间协调调节的证据。