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细胞周期蛋白E在黑腹果蝇中枢神经系统细胞命运决定中的关键作用。

A critical role for cyclin E in cell fate determination in the central nervous system of Drosophila melanogaster.

作者信息

Berger Christian, Pallavi S K, Prasad Mohit, Shashidhara L S, Technau Gerhard M

机构信息

Institute for Genetics, University of Mainz, D-55099 Mainz, Germany.

出版信息

Nat Cell Biol. 2005 Jan;7(1):56-62. doi: 10.1038/ncb1203. Epub 2004 Dec 5.

Abstract

We have examined the process by which cell diversity is generated in neuroblast (NB) lineages in the central nervous system of Drosophila melanogaster. Thoracic NB6-4 (NB6-4t) generates both neurons and glial cells, whereas NB6-4a generates only glial cells in abdominal segments. This is attributed to an asymmetric first division of NB6-4t, localizing prospero (pros) and glial cell missing (gcm) only to the glial precursor cell, and a symmetric division of NB6-4a, where both daughter cells express pros and gcm. Here we show that the NB6-4t lineage represents the ground state, which does not require the input of any homeotic gene, whereas the NB6-4a lineage is specified by the homeotic genes abd-A and Abd-B. They specify the NB6-4a lineage by down-regulating levels of the G1 cyclin, DmCycE (CycE). CycE, which is asymmetrically expressed after the first division of NB6-4t, functions upstream of pros and gcm to specify the neuronal sublineage. Loss of CycE function causes homeotic transformation of NB6-4t to NB6-4a, whereas ectopic CycE induces reverse transformations. However, other components of the cell cycle seem to have a minor role in this process, suggesting a critical role for CycE in regulating cell fate in segment-specific neural lineages.

摘要

我们研究了果蝇中枢神经系统中神经母细胞(NB)谱系产生细胞多样性的过程。胸段的NB6-4(NB6-4t)既能产生神经元,也能产生神经胶质细胞,而腹段的NB6-4a仅产生神经胶质细胞。这归因于NB6-4t的不对称首次分裂,仅将prospero(pros)和神经胶质细胞缺失(gcm)定位于神经胶质前体细胞,以及NB6-4a的对称分裂,其两个子细胞均表达pros和gcm。在这里我们表明,NB6-4t谱系代表了基础状态,不需要任何同源异型基因的输入,而NB6-4a谱系由同源异型基因abd-A和Abd-B指定。它们通过下调G1周期蛋白DmCycE(CycE)的水平来指定NB6-4a谱系。CycE在NB6-4t首次分裂后不对称表达,在pros和gcm的上游起作用以指定神经元亚谱系。CycE功能的丧失导致NB6-4t向NB6-4a的同源异型转化,而异位表达CycE则诱导反向转化。然而,细胞周期的其他成分在此过程中似乎作用较小,这表明CycE在调节特定节段神经谱系中的细胞命运方面起关键作用。

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