Regulation of CHK1 by mTOR contributes to the evasion of DNA damage barrier of cancer cells
Abstract Oncogenic transformation leads to dysregulated cell proliferation, nutrient deficiency, and hypoxia resulting in metabolic stress and increased DNA damage. In normal cells, such metabolic stress leads to inhibition of signaling through the mammalian Target of Rapamycin Complex 1 (mTORC1), r...
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doaj-bdf611556b6f4eb19e76e597eeb22d1e2020-12-08T02:59:48ZengNature Publishing GroupScientific Reports2045-23222017-05-017111310.1038/s41598-017-01729-wRegulation of CHK1 by mTOR contributes to the evasion of DNA damage barrier of cancer cellsXinhui Zhou0Weijin Liu1Xing Hu2Adrienne Dorrance3Ramiro Garzon4Peter J. Houghton5Changxian Shen6Department of Gynecology, the First Affiliated Hospital, School of Medicine, Zhejiang UniversityCollege of Biology and Food Engineering, Huaihua UniversityCollege of Biology and Food Engineering, Huaihua UniversityComprehensive Cancer Center, The Ohio State UniversityComprehensive Cancer Center, The Ohio State UniversityThe Greehey Children’s Cancer Research Institute at the UT Health Science CenterComprehensive Cancer Center, The Ohio State UniversityAbstract Oncogenic transformation leads to dysregulated cell proliferation, nutrient deficiency, and hypoxia resulting in metabolic stress and increased DNA damage. In normal cells, such metabolic stress leads to inhibition of signaling through the mammalian Target of Rapamycin Complex 1 (mTORC1), reduction of protein translation, cell cycle arrest, and conservation of energy. In contrast, negative regulation of mTORC1 signaling by DNA damage is abrogated in many cancer cells, thus mTORC1 signaling remains active under microenvironmental conditions that potentially promote endogenous DNA damage. Here we report that mTORC1 signaling suppresses endogenous DNA damage and replication stress. Pharmacological inhibition of mTOR signaling resulted in phosphorylation of H2AX concomitant with the decrease of CHK1 levels both in cell culture and mouse rhadomyosarcoma xenografts. Further results demonstrated that mTORC1-S6K1 signaling controls transcription of CHK1 via Rb-E2F by upregulating cyclin D and E. Consistent with these results, downregulation of CHK1 by inhibition of mTOR kinase resulted in defects in the slow S phase progression following DNA damage. These results indicate that, under stressful conditions, maintained mTORC1 signaling in cancer cells promotes survival by suppressing endogenous DNA damage, and may control cell fate through the regulation of CHK1.https://doi.org/10.1038/s41598-017-01729-w |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xinhui Zhou Weijin Liu Xing Hu Adrienne Dorrance Ramiro Garzon Peter J. Houghton Changxian Shen |
spellingShingle |
Xinhui Zhou Weijin Liu Xing Hu Adrienne Dorrance Ramiro Garzon Peter J. Houghton Changxian Shen Regulation of CHK1 by mTOR contributes to the evasion of DNA damage barrier of cancer cells Scientific Reports |
author_facet |
Xinhui Zhou Weijin Liu Xing Hu Adrienne Dorrance Ramiro Garzon Peter J. Houghton Changxian Shen |
author_sort |
Xinhui Zhou |
title |
Regulation of CHK1 by mTOR contributes to the evasion of DNA damage barrier of cancer cells |
title_short |
Regulation of CHK1 by mTOR contributes to the evasion of DNA damage barrier of cancer cells |
title_full |
Regulation of CHK1 by mTOR contributes to the evasion of DNA damage barrier of cancer cells |
title_fullStr |
Regulation of CHK1 by mTOR contributes to the evasion of DNA damage barrier of cancer cells |
title_full_unstemmed |
Regulation of CHK1 by mTOR contributes to the evasion of DNA damage barrier of cancer cells |
title_sort |
regulation of chk1 by mtor contributes to the evasion of dna damage barrier of cancer cells |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2017-05-01 |
description |
Abstract Oncogenic transformation leads to dysregulated cell proliferation, nutrient deficiency, and hypoxia resulting in metabolic stress and increased DNA damage. In normal cells, such metabolic stress leads to inhibition of signaling through the mammalian Target of Rapamycin Complex 1 (mTORC1), reduction of protein translation, cell cycle arrest, and conservation of energy. In contrast, negative regulation of mTORC1 signaling by DNA damage is abrogated in many cancer cells, thus mTORC1 signaling remains active under microenvironmental conditions that potentially promote endogenous DNA damage. Here we report that mTORC1 signaling suppresses endogenous DNA damage and replication stress. Pharmacological inhibition of mTOR signaling resulted in phosphorylation of H2AX concomitant with the decrease of CHK1 levels both in cell culture and mouse rhadomyosarcoma xenografts. Further results demonstrated that mTORC1-S6K1 signaling controls transcription of CHK1 via Rb-E2F by upregulating cyclin D and E. Consistent with these results, downregulation of CHK1 by inhibition of mTOR kinase resulted in defects in the slow S phase progression following DNA damage. These results indicate that, under stressful conditions, maintained mTORC1 signaling in cancer cells promotes survival by suppressing endogenous DNA damage, and may control cell fate through the regulation of CHK1. |
url |
https://doi.org/10.1038/s41598-017-01729-w |
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