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中心体缺失触发转录程序以对抗凋亡诱导的氧化应激。

Centrosome Loss Triggers a Transcriptional Program To Counter Apoptosis-Induced Oxidative Stress.

机构信息

Department of Biology, University of North Carolina at Chapel Hill, North Carolina 27599

Department of Medicine, University of North Carolina at Chapel Hill, North Carolina 27599.

出版信息

Genetics. 2019 May;212(1):187-211. doi: 10.1534/genetics.119.302051. Epub 2019 Mar 13.

Abstract

Centrosomes play a critical role in mitotic spindle assembly through their role in microtubule nucleation and bipolar spindle assembly. Loss of centrosomes can impair the ability of some cells to properly conduct mitotic division, leading to chromosomal instability, cell stress, and aneuploidy. Multiple aspects of the cellular response to mitotic error associated with centrosome loss appear to involve activation of JNK signaling. To further characterize the transcriptional effects of centrosome loss, we compared gene expression profiles of wild-type and acentrosomal cells from wing imaginal discs. We found elevation of expression of JNK target genes, which we verified at the protein level. Consistent with this, the upregulated gene set showed significant enrichment for the AP-1 consensus DNA-binding sequence. We also found significant elevation in expression of genes regulating redox balance. Based on those findings, we examined oxidative stress after centrosome loss, revealing that acentrosomal wing cells have significant increases in reactive oxygen species (ROS). We then performed a candidate genetic screen and found that one of the genes upregulated in acentrosomal cells, glucose-6-phosphate dehydrogenase, plays an important role in buffering acentrosomal cells against increased ROS and helps protect those cells from cell death. Our data and other recent studies have revealed a complex network of signaling pathways, transcriptional programs, and cellular processes that epithelial cells use to respond to stressors, like mitotic errors, to help limit cell damage and maintain normal tissue development.

摘要

中心体通过微管成核和双极纺锤体组装在有丝分裂纺锤体组装中起着至关重要的作用。中心体的丢失会损害一些细胞进行有丝分裂分裂的能力,导致染色体不稳定、细胞应激和非整倍体。细胞对与中心体丢失相关的有丝分裂错误的反应的多个方面似乎都涉及到 JNK 信号的激活。为了进一步描述中心体丢失所导致的细胞转录反应,我们比较了来自 翅 imaginal 盘的野生型和无中心体细胞的基因表达谱。我们发现 JNK 靶基因的表达水平升高,在蛋白质水平上得到了验证。与此一致,上调基因集显示出与 AP-1 保守 DNA 结合序列显著富集。我们还发现调节氧化还原平衡的基因表达显著升高。基于这些发现,我们研究了中心体丢失后的氧化应激,发现无中心体的 wing 细胞中活性氧 (ROS) 显著增加。然后,我们进行了候选基因筛选,发现无中心体细胞中上调的一个基因,葡萄糖-6-磷酸脱氢酶,在缓冲无中心体细胞对抗增加的 ROS 方面起着重要作用,并有助于保护这些细胞免受细胞死亡。我们的数据和其他最近的研究揭示了上皮细胞用来应对应激的信号通路、转录程序和细胞过程的复杂网络,如有丝分裂错误,以帮助限制细胞损伤并维持正常组织发育。

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