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本文引用的文献

1
ATM, ATR, and DNA-PK: The Trinity at the Heart of the DNA Damage Response.ATM、ATR 和 DNA-PK:DNA 损伤反应中的三位一体。
Mol Cell. 2017 Jun 15;66(6):801-817. doi: 10.1016/j.molcel.2017.05.015.
2
Regulation of the DNA Damage Response by DNA-PKcs Inhibitory Phosphorylation of ATM.通过ATM的DNA-PKcs抑制性磷酸化对DNA损伤反应的调控
Mol Cell. 2017 Jan 5;65(1):91-104. doi: 10.1016/j.molcel.2016.11.004. Epub 2016 Dec 8.
3
Single-cell imaging of normal and malignant cell engraftment into optically clear prkdc-null SCID zebrafish.正常细胞和恶性细胞植入光学透明的prkdc基因敲除的SCID斑马鱼的单细胞成像。
J Exp Med. 2016 Nov 14;213(12):2575-2589. doi: 10.1084/jem.20160378. Epub 2016 Oct 24.
4
The ATM Kinase Restrains Joining of Both VDJ Signal and Coding Ends.ATM激酶抑制VDJ信号末端和编码末端的连接。
J Immunol. 2016 Oct 15;197(8):3165-3174. doi: 10.4049/jimmunol.1600597. Epub 2016 Aug 29.
5
DNA Breaks and End Resection Measured Genome-wide by End Sequencing.通过末端测序全基因组测量DNA断裂与末端切除
Mol Cell. 2016 Sep 1;63(5):898-911. doi: 10.1016/j.molcel.2016.06.034. Epub 2016 Jul 28.
6
Restoration of ATM Expression in DNA-PKcs-Deficient Cells Inhibits Signal End Joining.在DNA-PKcs缺陷细胞中恢复ATM表达可抑制信号末端连接。
J Immunol. 2016 Apr 1;196(7):3032-42. doi: 10.4049/jimmunol.1501654. Epub 2016 Feb 26.
7
DNA-PKcs and PARP1 Bind to Unresected Stalled DNA Replication Forks Where They Recruit XRCC1 to Mediate Repair.DNA依赖蛋白激酶催化亚基(DNA-PKcs)和聚(ADP-核糖)聚合酶1(PARP1)与未切除的停滞DNA复制叉结合,在那里它们招募X射线修复交叉互补蛋白1(XRCC1)来介导修复。
Cancer Res. 2016 Mar 1;76(5):1078-88. doi: 10.1158/0008-5472.CAN-15-0608. Epub 2015 Nov 24.
8
XRCC4/XLF Interaction Is Variably Required for DNA Repair and Is Not Required for Ligase IV Stimulation.DNA修复对XRCC4/XLF相互作用的需求各不相同,而连接酶IV激活则不需要这种相互作用。
Mol Cell Biol. 2015 Sep 1;35(17):3017-28. doi: 10.1128/MCB.01503-14. Epub 2015 Jun 22.
9
Differential phosphorylation of DNA-PKcs regulates the interplay between end-processing and end-ligation during nonhomologous end-joining.DNA依赖蛋白激酶催化亚基(DNA-PKcs)的差异磷酸化作用在非同源末端连接过程中调节末端加工与末端连接之间的相互作用。
Mol Cell. 2015 Apr 2;58(1):172-85. doi: 10.1016/j.molcel.2015.02.024. Epub 2015 Mar 26.
10
The rate of X-ray-induced DNA double-strand break repair in the embryonic mouse brain is unaffected by exposure to 50 Hz magnetic fields.胚胎期小鼠大脑中X射线诱导的DNA双链断裂修复率不受50赫兹磁场暴露的影响。
Int J Radiat Biol. 2015 Jun;91(6):495-9. doi: 10.3109/09553002.2015.1021963. Epub 2015 Mar 28.

解析不同 DNA-PKcs 缺陷模型中的表型差异。

Deciphering phenotypic variance in different models of DNA-PKcs deficiency.

机构信息

College of Veterinary Medicine, Department of Microbiology & Molecular Genetics, and Department of Pathobiology & Diagnostic Investigation, Michigan State University, East Lansing, MI 48824, USA.

College of Veterinary Medicine, Department of Microbiology & Molecular Genetics, and Department of Pathobiology & Diagnostic Investigation, Michigan State University, East Lansing, MI 48824, USA.

出版信息

DNA Repair (Amst). 2019 Jan;73:7-16. doi: 10.1016/j.dnarep.2018.10.004. Epub 2018 Oct 30.

DOI:10.1016/j.dnarep.2018.10.004
PMID:30409670
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6312468/
Abstract

DNA-PKcs deficiency has been studied in numerous animal models and cell culture systems. In previous studies of kinase inactivating mutations in cell culture systems, ablation of DNA-PK's catalytic activity results in a cell phenotype that is virtually indistinguishable from that ascribed to complete loss of the enzyme. However, a recent compelling study demonstrates a remarkably more severe phenotype in mice harboring a targeted disruption of DNA-PK's ATP binding site as compared to DNA-PKcs deficient mice. Here we investigate the mechanism for these divergent results. We find that kinase inactivating DNA-PKcs mutants markedly radiosensitize immortalized DNA-PKcs deficient cells, but have no substantial effects on transformed DNA-PKcs deficient cells. Since the non-homologous end joining mechanism likely functions similarly in all of these cell strains, it seems unlikely that kinase inactive DNA-PK could impair the end joining mechanism in some cell types, but not in others. In fact, we observed no significant differences in either episomal or chromosomal end joining assays in cells expressing kinase inactivated DNA-PKcs versus no DNA-PKcs. Several potential explanations could explain these data including a non-catalytic role for DNA-PKcs in promoting cell death, or alteration of gene expression by loss of DNA-PKcs as opposed to inhibition of its catalytic activity. Finally, controversy exists as to whether DNA-PKcs autophosphorylates or is the target of other PIKKs; we present data demonstrating that DNA-PK primarily autophosphorylates.

摘要

DNA-PKcs 缺陷已在许多动物模型和细胞培养系统中进行了研究。在先前的细胞培养系统激酶失活突变研究中,DNA-PK 的催化活性缺失导致的细胞表型几乎与完全丧失该酶的表型无法区分。然而,最近一项引人注目的研究表明,与 DNA-PKcs 缺陷型小鼠相比,携带靶向破坏 DNA-PK 的 ATP 结合位点的小鼠具有明显更严重的表型。在这里,我们研究了这些不同结果的机制。我们发现,失活激酶的 DNA-PKcs 突变体可显著增强对永生化 DNA-PKcs 缺陷型细胞的放射敏感性,但对转化的 DNA-PKcs 缺陷型细胞几乎没有影响。由于非同源末端连接机制在所有这些细胞株中可能具有相似的功能,因此失活激酶的 DNA-PK 不太可能在某些细胞类型中而不是其他细胞类型中损害末端连接机制。事实上,我们在表达失活激酶的 DNA-PKcs 与无 DNA-PKcs 的细胞中的游离体或染色体末端连接测定中均未观察到显著差异。这些数据可以用几种潜在的解释来解释,包括 DNA-PKcs 在促进细胞死亡中的非催化作用,或者是 DNA-PKcs 的缺失而不是其催化活性的抑制导致基因表达的改变。最后,关于 DNA-PKcs 是否自我磷酸化或是否是其他 PIKKs 的靶标存在争议;我们提供的数据表明 DNA-PK 主要自我磷酸化。