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The fission yeast meiotic regulator Mei2p forms a dot structure in the horse-tail nucleus in association with the sme2 locus on chromosome II.裂殖酵母减数分裂调节因子Mei2p与II号染色体上的sme2基因座相关联,在马尾核中形成点状结构。
Mol Biol Cell. 2003 Jun;14(6):2461-9. doi: 10.1091/mbc.e02-11-0738. Epub 2003 Mar 7.
2
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The fission yeast meiotic regulator Mei2p undergoes nucleocytoplasmic shuttling.裂殖酵母减数分裂调节因子Mei2p进行核质穿梭。
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Meiotic long non-coding meiRNA accumulates as a dot at its genetic locus facilitated by Mmi1 and plays as a decoy to lure Mmi1.减数分裂长链非编码meiRNA在Mmi1的促进下在其基因位点积累成一个点,并作为诱饵吸引Mmi1。
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and mRNAs are novel RNA targets of the Mei2 RNA-binding protein during early meiosis in .并且 mRNAs 是 Mei2 RNA 结合蛋白在 中早期减数分裂过程中的新型 RNA 靶标。
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Spo5/Mug12, a putative meiosis-specific RNA-binding protein, is essential for meiotic progression and forms Mei2 dot-like nuclear foci.Spo5/Mug12是一种假定的减数分裂特异性RNA结合蛋白,对减数分裂进程至关重要,并形成Mei2点状核灶。
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Structural insights reveal the specific recognition of meiRNA by the Mei2 protein.结构研究揭示了 Mei2 蛋白对 meiRNA 的特异性识别。
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Chromosome-associated RNA-protein complexes promote pairing of homologous chromosomes during meiosis in Schizosaccharomyces pombe.染色体相关 RNA-蛋白质复合物在裂殖酵母减数分裂过程中促进同源染色体的配对。
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本文引用的文献

1
Mutants of Schizosaccharomyces pombe which sporulate in the haploid state.在单倍体状态下形成孢子的粟酒裂殖酵母突变体。
Mol Gen Genet. 1985;198(3):416-21. doi: 10.1007/BF00332932.
2
Monopolar spindle attachment of sister chromatids is ensured by two distinct mechanisms at the first meiotic division in fission yeast.在裂殖酵母的第一次减数分裂中,姐妹染色单体的单极纺锤体附着通过两种不同的机制得以确保。
EMBO J. 2003 May 1;22(9):2284-96. doi: 10.1093/emboj/cdg222.
3
14-3-3 protein interferes with the binding of RNA to the phosphorylated form of fission yeast meiotic regulator Mei2p.14-3-3蛋白干扰RNA与裂殖酵母减数分裂调节因子Mei2p磷酸化形式的结合。
Curr Biol. 2002 Jan 22;12(2):141-5. doi: 10.1016/s0960-9822(01)00654-6.
4
Phosphorylation of Mei2 and Ste11 by Pat1 kinase inhibits sexual differentiation via ubiquitin proteolysis and 14-3-3 protein in fission yeast.在裂殖酵母中,Pat1激酶对Mei2和Ste11的磷酸化通过泛素蛋白水解作用和14-3-3蛋白抑制性别分化。
Dev Cell. 2001 Sep;1(3):389-99. doi: 10.1016/s1534-5807(01)00037-5.
5
The fission yeast meiotic regulator Mei2p undergoes nucleocytoplasmic shuttling.裂殖酵母减数分裂调节因子Mei2p进行核质穿梭。
FEBS Lett. 2001 Jun 22;499(3):251-5. doi: 10.1016/s0014-5793(01)02567-4.
6
Telomere-led bouquet formation facilitates homologous chromosome pairing and restricts ectopic interaction in fission yeast meiosis.端粒引导的花束形成促进裂殖酵母减数分裂中的同源染色体配对并限制异位相互作用。
EMBO J. 2000 Jul 17;19(14):3831-40. doi: 10.1093/emboj/19.14.3831.
7
Meiotic DNA replication checkpoint control in fission yeast.裂殖酵母中的减数分裂DNA复制检查点控制
Genes Dev. 1999 Oct 1;13(19):2581-93. doi: 10.1101/gad.13.19.2581.
8
A cytoplasmic dynein heavy chain is required for oscillatory nuclear movement of meiotic prophase and efficient meiotic recombination in fission yeast.胞质动力蛋白重链是裂殖酵母减数分裂前期振荡性核运动和高效减数分裂重组所必需的。
J Cell Biol. 1999 Jun 14;145(6):1233-49. doi: 10.1083/jcb.145.6.1233.
9
Dynamics of centromeres during metaphase-anaphase transition in fission yeast: Dis1 is implicated in force balance in metaphase bipolar spindle.裂殖酵母中期-后期转换过程中着丝粒的动态变化:Dis1参与中期双极纺锤体的力平衡。
Mol Biol Cell. 1998 Nov;9(11):3211-25. doi: 10.1091/mbc.9.11.3211.
10
RNA-assisted nuclear transport of the meiotic regulator Mei2p in fission yeast.RNA辅助的裂殖酵母减数分裂调节因子Mei2p的核运输
Cell. 1998 Oct 2;95(1):115-23. doi: 10.1016/s0092-8674(00)81787-0.

裂殖酵母减数分裂调节因子Mei2p与II号染色体上的sme2基因座相关联,在马尾核中形成点状结构。

The fission yeast meiotic regulator Mei2p forms a dot structure in the horse-tail nucleus in association with the sme2 locus on chromosome II.

作者信息

Shimada Tadayuki, Yamashita Akira, Yamamoto Masayuki

机构信息

Department of Biophysics and Biochemistry, Graduate School of Science, University of Tokyo, Japan.

出版信息

Mol Biol Cell. 2003 Jun;14(6):2461-9. doi: 10.1091/mbc.e02-11-0738. Epub 2003 Mar 7.

DOI:10.1091/mbc.e02-11-0738
PMID:12808043
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC194894/
Abstract

Fission yeast Mei2p is an RNA-binding protein essential for induction of both premeiotic DNA synthesis and first meiotic division. Mei2p forms a dot structure at an apparently fixed position in the horse-tail nucleus during meiotic prophase. This dot formation requires a meiosis-specific RNA species, meiRNA, which is indispensable for meiosis I, and the emergence of the dot is an indicator of the ability of the cell to perform meiosis I. Herein, we have sought the identity of this dot. Analyses using chromosome segregation in haploid meiosis, reciprocal translocation of chromosomes, and gene translocation have led us to conclude that the Mei2p dot is in association with the sme2 gene on the short arm of chromosome II, which encodes meiRNA. Transcripts of sme2, rather than the DNA sequence of the gene, seem to be the determinant of the localization of the Mei2p dot. However, evidence suggests that the dot may not be a simple reflection of the attachment of Mei2p to meiRNA undergoing transcription. We speculate that the Mei2p dot is a specialized structure, either to foster the assembly of Mei2p and meiRNA or to perform some unidentified function indispensable for meiosis I.

摘要

裂殖酵母Mei2p是一种RNA结合蛋白,对于减数分裂前DNA合成和第一次减数分裂的诱导至关重要。在减数分裂前期,Mei2p在马尾核中一个明显固定的位置形成点状结构。这种点状结构的形成需要一种减数分裂特异性RNA物种——meiRNA,它对于减数分裂I是不可或缺的,并且点状结构的出现是细胞进行减数分裂I能力的一个指标。在此,我们探寻了这个点状结构的身份。利用单倍体减数分裂中的染色体分离、染色体的相互易位以及基因易位进行的分析,使我们得出结论,Mei2p点状结构与II号染色体短臂上的sme2基因相关联,该基因编码meiRNA。sme2的转录本,而非该基因的DNA序列,似乎是Mei2p点状结构定位的决定因素。然而,有证据表明,这个点状结构可能并非简单地反映Mei2p与正在转录的meiRNA的附着情况。我们推测,Mei2p点状结构是一种特殊结构,要么是为了促进Mei2p和meiRNA的组装,要么是为了执行一些对减数分裂I不可或缺的未知功能。