Clock and ATF4 transcription system regulates drug resistance in human cancer cell lines

被引:0
作者
T Igarashi
H Izumi
T Uchiumi
K Nishio
T Arao
M Tanabe
H Uramoto
K Sugio
K Yasumoto
Y Sasaguri
K Y Wang
Y Otsuji
K Kohno
机构
[1] School of Medicine,Department of Molecular Biology
[2] University of Occupational and Environmental Health,Department of Internal Medicine II
[3] School of Medicine,Department of Genome Biology
[4] University of Occupational and Environmental Health,Department of Surgery II
[5] School of Medicine,Department of Pathology II
[6] Kinki University,undefined
[7] School of Medicine,undefined
[8] University of Occupational and Environmental Health,undefined
[9] School of Medicine,undefined
[10] University of Occupational and Environmental Health,undefined
来源
Oncogene | 2007年 / 26卷
关键词
Clock; ATF4; multidrug resistance; glutathione; chronotherapy;
D O I
暂无
中图分类号
学科分类号
摘要
The mechanisms underlying cellular drug resistance have been extensively studied, but little is known about its regulation. We have previously reported that activating transcription factor 4 (ATF4) is upregulated in cisplatin-resistant cells and plays a role in cisplatin resistance. Here, we find out a novel relationship between the circadian transcription factor Clock and drug resistance. Clock drives the periodical expression of many genes that regulate hormone release, cell division, sleep-awake cycle and tumor growth. We demonstrate that ATF4 is a direct target of Clock, and that Clock is overexpressed in cisplatin-resistant cells. Furthermore, Clock expression significantly correlates with cisplatin sensitivity, and that the downregulation of either Clock or ATF4 confers sensitivity of A549 cells to cisplatin and etoposide. Notably, ATF4-overexpressing cells show multidrug resistance and marked elevation of intracellular glutathione. The microarray study reveals that genes for glutathione metabolism are generally downregulated by the knockdown of ATF4 expression. These results suggest that the Clock and ATF4 transcription system might play an important role in multidrug resistance through glutathione-dependent redox system, and also indicate that physiological potentials of Clock-controlled redox system might be important to better understand the oxidative stress-associated disorders including cancer and systemic chronotherapy.
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页码:4749 / 4760
页数:11
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  • [1] Annereau JP(2004)Analysis of ATP-binding cassette transporter expression in drug-selected cell lines by a microarray dedicated to multidrug resistance Mol Pharmacol 66 1397-1405
  • [2] Szakacs G(2006)ZD6474 inhibits tumor growth and intraperitoneal dissemination in a highly metastatic orthotopic gastric cancer model Int J Cancer 118 483-489
  • [3] Tucker CJ(2004)Activating transcription factor 4 is translationally regulated by hypoxic stress Mol Cell Biol 24 7469-7482
  • [4] Arciello A(2003)The days and nights of cancer cells Cancer Res 63 7545-7552
  • [5] Cardarelli C(1996)DNA repair: enzymatic mechanisms and relevance to drug response J Natl Cancer Inst 88 1346-1360
  • [6] Collins J(1999)Drug resistance and ATP-dependent conjugate transport mediated by the apical multidrug resistance protein, MRP2, permanently expressed in human and canine cells Mol Pharmacol 55 929-937
  • [7] Arao T(2006)Transmembrane transport of endo- and xenobiotics by mammalian ATP-binding cassette multidrug resistance proteins Physiol Rev 86 849-899
  • [8] Yanagihara K(2002)Cellular glutathione and thiols metabolism Biochem Pharmacol 64 1019-1026
  • [9] Takigahira M(1999)Complexes containing activating transcription factor (ATF)/cAMP-responsive-element-binding protein (CREB) interact with the CCAAT/enhancer-binding protein (C/EBP)-ATF composite site to regulate Gadd153 expression during the stress response Biochem J 339 135-141
  • [10] Takeda M(2003)Strategies for reversing drug resistance Oncogene 22 7512-7523