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A Cell Cycle Alteration Precedes Apoptosis of Granule Cell Precursors in the weaver Mouse Cerebellum

机译:细胞周期改变先于织布小鼠小脑颗粒细胞前体的凋亡。

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摘要

A missense mutation in the gene coding for the G-protein-activated inwardly rectifying potassium (GIRK) channel, GIRK2, is responsible for apoptosis in the external germinal layer (EGL) of the cerebellum and a nonapoptotic death of midbrain dopaminergic neurons in the weaver (wv) mouse. Failure of axonogenesis and migration are considered to be the primary consequences of GIRK2 channel malfunction in the cerebellum. We investigated whether a disruption of the cell cycle precedes the failure of migration and axonogenesis and leads to massive apoptosis. To this end, immunohistochemistry and immunoblotting for PCNA, Cdk4, cyclin D, cyclin A, and the Cdk inhibitor p27/kip1, as well as in situ end-labeling for apoptotic DNA fragmentation, were applied to cerebella of P7-P21+/+, wv/+, and wv/wv mice. In +/+ and wv/+ mice, the expression of cell cycle proteins was limited to the outer, premigratory zone of the EGL. Antibodies to p27, a marker of cell differentiation, gave a reverse staining pattern. Due to migration delay, patches of p27-positive cells persisted in the outer EGL in P21 wv/+ mice. On the contrary, marked cell cycle up-regulation and absence of p27 occurred throughout the EGL at all ages in wv/wv mice, indicating an inability to switch off the cell cycle. Mitotic index evaluation showed that cell cycle activation was unrelated to proliferative events. Cell cycle proteins were not expressed in the substantia nigra, suggesting that nonapoptotic death of mature dopaminergic neurons is not preceded by abortive cell cycle re-entry. Our data show that abnormalities of the cell cycle in wv/wv cerebellum represent a major and early consequence of GIRK2 channel malfunction and may strongly influence the susceptibility of EGL cells to apoptosis. These observations may help in understanding the pathogenesis of human neurological channelopathies.
机译:G蛋白内向激活钾离子通道(GIRK)通道GIRK2的基因错义突变导致外生发层(EGL)中的 细胞凋亡。 weaver(wv)小鼠的小脑 以及中脑多巴胺能神经元的非凋亡性死亡。轴突发生和迁移失败被认为是小脑GIRK2通道功能障碍的主要后果。我们研究了 细胞周期的破坏是否在迁移和轴突发生失败之前发生,并导致大量的细胞凋亡。为此,对PCNA,Cdk4,cyclin D,cyclin A和Cdk 抑制剂p27 / kip1进行免疫组化和免疫印迹,并对凋亡进行原位标记将 DNA片段应用于P7-P21 + / +,wv / +, 和wv / wv小鼠的小脑。在+ / +和wv / +小鼠中,细胞 周期蛋白的表达仅限于 EGL的外迁移区。 p27抗体是细胞分化的标志物, 具有相反的染色模式。由于迁移延迟,p27阳性细胞的补丁 持续存在于P21 wv / + 小鼠的外部EGL中。相反,在wv / wv小鼠的各个年龄段,整个EGL均出现明显的细胞周期上调和p27缺乏 表明无法关闭细胞周期。有丝分裂 指数评估表明,细胞周期激活与增殖事件无关。黑质中未表达细胞周期蛋白 ,表明成熟的多巴胺能神经元的非凋亡性死亡 之前没有流产的细胞 循环再进入。 。我们的数据表明,wv / wv小脑中的细胞 周期异常是GIRK2通道故障的主要和早期后果 ,并且可能强烈影响 EGL细胞对凋亡的敏感性。这些观察 可能有助于了解人类神经系统疾病的发病机制。

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  • 来源
    《American Journal of Pathology》 |1999年第2期|365-373|共9页
  • 作者单位

    From the Department of Neuroscience,Laboratory of Neuropathology, University of Turin, Turin, Italy;

    From the Department of Neuroscience,Laboratory of Neuropathology, University of Turin, Turin, Italy;

    From the Department of Neuroscience,Laboratory of Neuropathology, University of Turin, Turin, Italy;

    From the Department of Neuroscience,Laboratory of Neuropathology, University of Turin, Turin, Italy;

    and the Department of Pathology and Laboratory Medicine,Laboratory of Cellular and Molecular Neuropathology, Indiana University School of Medicine, Indianapolis, Indiana;

    and the Department of Pathology and Laboratory Medicine,Laboratory of Cellular and Molecular Neuropathology, Indiana University School of Medicine, Indianapolis, Indiana;

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  • 入库时间 2022-08-17 14:17:18

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