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1
The Arabidopsis gene tardy asynchronous meiosis is required for the normal pace and synchrony of cell division during male meiosis.拟南芥基因迟缓异步减数分裂对于雄性减数分裂期间细胞分裂的正常速度和同步性是必需的。
Plant Physiol. 2001 Nov;127(3):1157-66.
2
The STUD gene is required for male-specific cytokinesis after telophase II of meiosis in Arabidopsis thaliana.在拟南芥减数分裂II末期后的雄性特异性胞质分裂过程中,STUD基因是必需的。
Dev Biol. 1997 Jul 1;187(1):114-24. doi: 10.1006/dbio.1997.8554.
3
Successive microsporogenesis affects pollen aperture pattern in the tam mutant of Arabidopsis thaliana.连续的小孢子发生影响拟南芥 tam 突变体花粉孔模式。
Ann Bot. 2011 Jun;107(8):1421-6. doi: 10.1093/aob/mcr074. Epub 2011 Apr 12.
4
Progression through meiosis I and meiosis II in Arabidopsis anthers is regulated by an A-type cyclin predominately expressed in prophase I.拟南芥花药中减数分裂I和减数分裂II的进程由一种主要在前期I表达的A型细胞周期蛋白调控。
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5
The DUET gene is necessary for chromosome organization and progression during male meiosis in Arabidopsis and encodes a PHD finger protein.DUET基因对于拟南芥雄配子减数分裂过程中的染色体组织和进程是必需的,并且编码一种植物同源结构域(PHD)指蛋白。
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6
The plant-specific protein FEHLSTART controls male meiotic entry, initializing meiotic synchronization in Arabidopsis.植物特异性蛋白FEHLSTART控制雄性减数分裂进入,启动拟南芥中的减数分裂同步。
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7
Loss-of-function mutants and overexpression lines of the Arabidopsis cyclin CYCA1;2/Tardy Asynchronous Meiosis exhibit different defects in prophase-i meiocytes but produce the same meiotic products.拟南芥细胞周期蛋白CYCA1;2/迟缓异步减数分裂的功能缺失突变体和过表达株系在减数第一次分裂前期的减数分裂细胞中表现出不同的缺陷,但产生相同的减数分裂产物。
PLoS One. 2014 Nov 17;9(11):e113348. doi: 10.1371/journal.pone.0113348. eCollection 2014.
8
The cyclin-A CYCA1;2/TAM is required for the meiosis I to meiosis II transition and cooperates with OSD1 for the prophase to first meiotic division transition.细胞周期蛋白 A CYCA1;2/TAM 对于从减数分裂 I 向减数分裂 II 的转变是必需的,并与 OSD1 合作完成从前期到第一次减数分裂的转变。
PLoS Genet. 2010 Jun 17;6(6):e1000989. doi: 10.1371/journal.pgen.1000989.
9
Meiotic progression in Arabidopsis is governed by complex regulatory interactions between SMG7, TDM1, and the meiosis I-specific cyclin TAM.拟南芥减数分裂的进程由 SMG7、TDM1 和减数分裂 I 特异性细胞周期蛋白 TAM 之间复杂的调控相互作用所控制。
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10
TETRASPORE is required for male meiotic cytokinesis in Arabidopsis thaliana.拟南芥雄配子减数分裂胞质分裂需要TETRASPORE。
Development. 1997 Jul;124(13):2645-57. doi: 10.1242/dev.124.13.2645.

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本文引用的文献

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Microfilament Distribution in Maize Meiotic Mutants Correlates with Microtubule Organization.玉米减数分裂突变体中的微丝分布与微管组织相关。
Plant Cell. 1991 Jun;3(6):637-644. doi: 10.1105/tpc.3.6.637.
2
Mitotic kinases as regulators of cell division and its checkpoints.有丝分裂激酶作为细胞分裂及其检查点的调节因子。
Nat Rev Mol Cell Biol. 2001 Jan;2(1):21-32. doi: 10.1038/35048096.
3
Dynamic analyses of the expression of the HISTONE::YFP fusion protein in arabidopsis show that syncytial endosperm is divided in mitotic domains.对拟南芥中组蛋白::黄色荧光蛋白融合蛋白表达的动态分析表明,合胞体胚乳被划分为有丝分裂结构域。
Plant Cell. 2001 Mar;13(3):495-509. doi: 10.1105/tpc.13.3.495.
4
Temperature dependent expression of cdc2 and cyclin B1 in spermatogenic cells during spermatogenesis.精子发生过程中生精细胞中cdc2和细胞周期蛋白B1的温度依赖性表达。
Cell Res. 2000 Dec;10(4):289-302. doi: 10.1038/sj.cr.7290056.
5
Analysis of the genome sequence of the flowering plant Arabidopsis thaliana.开花植物拟南芥的基因组序列分析。
Nature. 2000 Dec 14;408(6814):796-815. doi: 10.1038/35048692.
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Cell cycle regulation in Schizosaccharomyces pombe.粟酒裂殖酵母中的细胞周期调控
Curr Opin Microbiol. 2000 Dec;3(6):631-6. doi: 10.1016/s1369-5274(00)00152-1.
7
Stathmin is involved in S100A4-mediated regulation of cell cycle progression.微管相关蛋白Stathmin参与S100A4介导的细胞周期进程调控。
Clin Exp Metastasis. 1999;17(10):865-71. doi: 10.1023/a:1006778804532.
8
CDK-related protein kinases in plants.植物中与细胞周期蛋白依赖性激酶相关的蛋白激酶。
Plant Mol Biol. 2000 Aug;43(5-6):607-20. doi: 10.1023/a:1006470301554.
9
Multiple cyclin-dependent kinase complexes and phosphatases control G2/M progression in alfalfa cells.多种细胞周期蛋白依赖性激酶复合物和磷酸酶控制紫花苜蓿细胞中的G2/M期进程。
Plant Mol Biol. 2000 Aug;43(5-6):595-605. doi: 10.1023/a:1006412413671.
10
Regulation of cyclin-dependent kinases in Arabidopsis thaliana.拟南芥中细胞周期蛋白依赖性激酶的调控
Plant Mol Biol. 2000 Aug;43(5-6):583-93. doi: 10.1023/a:1006409907831.

拟南芥基因迟缓异步减数分裂对于雄性减数分裂期间细胞分裂的正常速度和同步性是必需的。

The Arabidopsis gene tardy asynchronous meiosis is required for the normal pace and synchrony of cell division during male meiosis.

作者信息

Magnard J L, Yang M, Chen Y C, Leary M, McCormick S

机构信息

Plant Gene Expression Center, United States Department of Agriculture/Agricultural Research Service, University of California, 800 Buchanan Street, Albany, CA 94710, USA.

出版信息

Plant Physiol. 2001 Nov;127(3):1157-66.

PMID:11706195
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC129284/
Abstract

Male meiosis in higher organisms features synchronous cell divisions in a large number of cells. It is not clear how this synchrony is achieved, nor is it known whether the synchrony is linked to the regulation of cell cycle progression. Here, we describe an Arabidopsis mutant, named tardy asynchronous meiosis (tam), that exhibits a phenotype of delayed and asynchronous cell divisions during male meiosis. In Arabidopsis, two nuclear divisions occur before simultaneous cytokinesis yields a tetrad of haploid cells. In tam, cell divisions are delayed, resulting in the formation of abnormal intermediates, most frequently dyad meiotic products, or in rare cases, dyad pollen (two gametophytes within one exine wall). Temperature-shift experiments showed that the percentage of the abnormal intermediates increased at 27 degrees C. Analysis of tam and the tam/quartet1 double mutant showed that most of these abnormal intermediates could continue through the normal rounds of cell divisions and form functional pollen, though at a slower than normal pace. The asynchrony of cell division started at the G2/M transition, with cells entering metaphase at different time points, during both meiosis I and II. In addition, chromosome condensation defects and mis-segregation were sometimes observed in tam. These observations suggest that the TAM protein positively regulates cell cycle progression, perhaps by promoting the G2/M transition. We speculate that there is a signal, perhaps TAM, that couples the normal pace of cell cycle progression with the synchrony of cell division during male meiosis.

摘要

高等生物中的雄性减数分裂具有大量细胞同步进行细胞分裂的特征。目前尚不清楚这种同步性是如何实现的,也不清楚这种同步性是否与细胞周期进程的调控有关。在此,我们描述了一种拟南芥突变体,名为迟缓异步减数分裂(tam),其在雄性减数分裂过程中表现出细胞分裂延迟和异步的表型。在拟南芥中,两次核分裂先于同步的胞质分裂发生,最终产生一个单倍体细胞的四分体。在tam突变体中,细胞分裂延迟,导致形成异常中间体,最常见的是二分体减数分裂产物,在极少数情况下,会形成二分体花粉(一个花粉外壁内有两个配子体)。温度转换实验表明,在27摄氏度时异常中间体的比例增加。对tam突变体和tam/四重奏1双突变体的分析表明,这些异常中间体中的大多数能够继续完成正常轮次的细胞分裂并形成功能性花粉,尽管速度比正常情况慢。细胞分裂的异步性始于G2/M转换期,在减数分裂I和II期间,细胞在不同时间点进入中期。此外,在tam突变体中有时会观察到染色体凝聚缺陷和错误分离。这些观察结果表明,TAM蛋白可能通过促进G2/M转换来正向调节细胞周期进程。我们推测存在一种信号,可能是TAM,它将细胞周期进程的正常速度与雄性减数分裂期间细胞分裂的同步性联系起来。