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四链体DNA的稳定会干扰端粒复制,导致依赖ATR的ATM信号通路激活。

Stabilization of quadruplex DNA perturbs telomere replication leading to the activation of an ATR-dependent ATM signaling pathway.

作者信息

Rizzo Angela, Salvati Erica, Porru Manuela, D'Angelo Carmen, Stevens Malcolm F, D'Incalci Maurizio, Leonetti Carlo, Gilson Eric, Zupi Gabriella, Biroccio Annamaria

机构信息

Department of Experimental Chemotherapy, Regina Elena Cancer Institute, 00158 Rome, Italy.

出版信息

Nucleic Acids Res. 2009 Sep;37(16):5353-64. doi: 10.1093/nar/gkp582. Epub 2009 Jul 13.

Abstract

Functional telomeres are required to maintain the replicative ability of cancer cells and represent putative targets for G-quadruplex (G4) ligands. Here, we show that the pentacyclic acridinium salt RHPS4, one of the most effective and selective G4 ligands, triggers damages in cells traversing S phase by interfering with telomere replication. Indeed, we found that RHPS4 markedly reduced BrdU incorporation at telomeres and altered the dynamic association of the telomeric proteins TRF1, TRF2 and POT1, leading to chromosome aberrations such as telomere fusions and telomere doublets. Analysis of the molecular damage pathway revealed that RHPS4 induced an ATR-dependent ATM signaling that plays a functional role in the cellular response to RHPS4 treatment. We propose that RHPS4, by stabilizing G4 DNA at telomeres, impairs fork progression and/or telomere processing resulting in telomere dysfunction and activation of a replication stress response pathway. The detailed understanding of the molecular mode of action of this class of compounds makes them attractive tools to understand telomere biology and provides the basis for a rational use of G4 ligands for the therapy of cancer.

摘要

功能性端粒是维持癌细胞复制能力所必需的,并且是G-四链体(G4)配体的潜在作用靶点。在此,我们表明五环吖啶鎓盐RHPS4是最有效且最具选择性的G4配体之一,它通过干扰端粒复制引发正在经历S期的细胞中的损伤。事实上,我们发现RHPS4显著减少了端粒处的BrdU掺入,并改变了端粒蛋白TRF1、TRF2和POT1的动态结合,导致染色体畸变,如端粒融合和端粒双联。对分子损伤途径的分析表明,RHPS4诱导了一种ATR依赖的ATM信号传导,该信号传导在细胞对RHPS4处理的反应中发挥功能性作用。我们提出,RHPS4通过稳定端粒处的G4 DNA,损害叉状进展和/或端粒加工,导致端粒功能障碍并激活复制应激反应途径。对这类化合物分子作用模式的详细了解使它们成为理解端粒生物学的有吸引力的工具,并为合理使用G4配体治疗癌症提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e2e7/2760797/31d1d64d8c66/gkp582f1.jpg

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