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Phosphorylation of p53 at the casein kinase II site selectively regulates p53-dependent transcriptional repression but not transactivation.酪蛋白激酶II位点的p53磷酸化选择性地调节p53依赖的转录抑制,而非反式激活。
Nucleic Acids Res. 1996 Mar 15;24(6):1119-26. doi: 10.1093/nar/24.6.1119.
2
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Mutation of the casein kinase II phosphorylation site abolishes the anti-proliferative activity of p53.酪蛋白激酶II磷酸化位点的突变消除了p53的抗增殖活性。
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本文引用的文献

1
Wild-type but not mutant p53 can repress transcription initiation in vitro by interfering with the binding of basal transcription factors to the TATA motif.野生型而非突变型p53可通过干扰基础转录因子与TATA基序的结合在体外抑制转录起始。
Oncogene. 1993 May;8(5):1183-93.
2
Thymocyte apoptosis induced by p53-dependent and independent pathways.由p53依赖和非依赖途径诱导的胸腺细胞凋亡。
Nature. 1993 Apr 29;362(6423):849-52. doi: 10.1038/362849a0.
3
p53 is required for radiation-induced apoptosis in mouse thymocytes.p53是小鼠胸腺细胞辐射诱导凋亡所必需的。
Nature. 1993 Apr 29;362(6423):847-9. doi: 10.1038/362847a0.
4
The transforming and suppressor functions of p53 alleles: effects of mutations that disrupt phosphorylation, oligomerization and nuclear translocation.p53等位基因的转化和抑制功能:破坏磷酸化、寡聚化及核转位的突变的影响
EMBO J. 1993 Mar;12(3):1029-37. doi: 10.1002/j.1460-2075.1993.tb05744.x.
5
mdm2 expression is induced by wild type p53 activity.mdm2表达由野生型p53活性诱导。
EMBO J. 1993 Feb;12(2):461-8. doi: 10.1002/j.1460-2075.1993.tb05678.x.
6
Direct interaction between the transcriptional activation domain of human p53 and the TATA box-binding protein.人p53转录激活结构域与TATA盒结合蛋白之间的直接相互作用。
J Biol Chem. 1993 Feb 5;268(4):2284-7.
7
Regulation of the human hsp70 promoter by p53.p53对人类hsp70启动子的调控
Science. 1993 Jan 1;259(5091):84-7. doi: 10.1126/science.8418500.
8
Wild-type mouse p53 down-regulates transcription from different virus enhancer/promoters.野生型小鼠p53可下调来自不同病毒增强子/启动子的转录。
Oncogene. 1993 Mar;8(3):589-97.
9
The tumor suppressor p53.肿瘤抑制因子p53
Biochim Biophys Acta. 1993 Aug 23;1155(2):181-205. doi: 10.1016/0304-419x(93)90004-v.
10
Tight DNA binding and oligomerization are dispensable for the ability of p53 to transactivate target genes and suppress transformation.紧密的DNA结合和寡聚化对于p53激活靶基因和抑制转化的能力而言并非必需。
EMBO J. 1993 Jul;12(7):2789-97. doi: 10.1002/j.1460-2075.1993.tb05940.x.

酪蛋白激酶II位点的p53磷酸化选择性地调节p53依赖的转录抑制,而非反式激活。

Phosphorylation of p53 at the casein kinase II site selectively regulates p53-dependent transcriptional repression but not transactivation.

作者信息

Hall S R, Campbell L E, Meek D W

机构信息

Biomedical Research Centre, University of Dundee, United Kingdom.

出版信息

Nucleic Acids Res. 1996 Mar 15;24(6):1119-26. doi: 10.1093/nar/24.6.1119.

DOI:10.1093/nar/24.6.1119
PMID:8604347
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC145737/
Abstract

The p53 tumour suppressor protein is a potent transcription factor which plays a central role in the defence of cells against DNA damage and the propagation of malignant clones. We have previously shown that phosphorylation of serine 386 in mouse p53 by the growth- associated protein kinase, casein kinase II (CKII), plays an important role in the ability of p53 to block the proliferation of drug-resistant colonies. In this paper we show that blocking phosphorylation of serine 386 through an alanine substitution, or placing a constitutive negative charge at this position in the form of aspartate, had no significant influence on p53-dependent transcriptional activation of a promoter containing 13 copies of a p53 consensus binding sequence, or of the p21WAF1 promoter which is a natural target for p53. In contrast, the alanine mutant showed a weak reduction in the ability of p53 to repress expression from the c-fos promoter, which is a target for p53-dependent repression in vivo. Strikingly, when the repression of the SV40 early promoter was examined, a reduction in the repression capacity of up to 5-fold was observed. Moreover, repression of the SV40 promoter could be partially restored by aspartic acid substitution at the phosphorylation site. These data indicate that phosphorylation at a specific C-terminal site can selectively regulate p53-dependent repression, but not transactivation.

摘要

p53肿瘤抑制蛋白是一种强大的转录因子,在细胞抵御DNA损伤及恶性克隆增殖的过程中发挥核心作用。我们之前已经表明,生长相关蛋白激酶酪蛋白激酶II(CKII)使小鼠p53的丝氨酸386磷酸化,这在p53阻断耐药菌落增殖的能力中起着重要作用。在本文中我们表明,通过丙氨酸替代来阻断丝氨酸386的磷酸化,或者以天冬氨酸的形式在该位置引入一个组成性负电荷,对包含13个p53共有结合序列拷贝的启动子或p21WAF1启动子(p53的一个天然靶标)的p53依赖性转录激活没有显著影响。相比之下,丙氨酸突变体在p53抑制c-fos启动子表达的能力上表现出微弱降低,c-fos启动子是体内p53依赖性抑制的一个靶标。引人注目的是,当检测SV40早期启动子的抑制情况时,观察到其抑制能力降低了高达5倍。此外,通过在磷酸化位点进行天冬氨酸替代,SV40启动子的抑制作用可部分恢复。这些数据表明,特定C末端位点的磷酸化可选择性调节p53依赖性抑制,但不调节反式激活。