Molecular mechanisms of oxidative stress-induced carcinogenesis: From epidemiology to oxygenomics

被引:109
作者
Toyokuni, Shinya [1 ]
机构
[1] Kyoto Univ, Dept Pathol & Biol Dis, Grad Sch Med, Sakyo Ku, Kyoto 6068501, Japan
关键词
carcinogenesis; chromosomal territory; oxidative DNA damage; ferric nitrilotriacetate; genome;
D O I
10.1002/iub.61
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Oxidative stress is associated with inflammation, radiation, reperfusion, and iron overload. Epidemiological observations have shown that oxidative stress is one of the major sources of carcinogenesis, the top-ranked cause of human mortality worldwide. In situations of oxidative stress, reactive oxygen and nitrogen species contribute to the alteration of genome information, presumably followed by selection of the adapted proliferating cells in a given environment. Recent data suggest that common molecular mechanisms exist in oxidative stress-induced carcinogenesis, including p16(INK4A) inactivation. Thus far, oxidative DNA damage in the genome as a cause of mutation has been recognized to be randomly distributed based on in vitro experiments, while localization of oxidative DNA damage in vivo has not been pursued. However, using a novel technique based on DNA immunoprecipitation in combination with genome information, we now know that the localization of oxidative DNA damage is not random in vivo. We propose to call this rather novel research area "oxygenomics." Many signaling pathways start from the recognition of DNA damage. Thus, possible underlying principles should be elucidated in association with each cell type, the genomic location of the damage with its transcriptional activity as well as the chromatin status determining the epigenetic effect. (c) 2008 IUBMB.
引用
收藏
页码:441 / 447
页数:7
相关论文
共 102 条
[31]   Association of p19ARF with Mdm2 inhibits ubiquitin ligase activity of Mdm2 for tumor suppressor p53 [J].
Honda, R ;
Yasuda, H .
EMBO JOURNAL, 1999, 18 (01) :22-27
[32]  
Honda S, 1998, CANCER RES, V58, P4255
[33]   Mice lacking thioredoxin-interacting protein provide evidence linking cellular redox state to appropriate response to nutritional signals [J].
Hui, TY ;
Sheth, SS ;
Diffley, JM ;
Potter, DW ;
Lusis, AJ ;
Attie, AD ;
Davis, RA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (23) :24387-24393
[34]  
Ikarashi M, 2002, ANTICANCER RES, V22, P4045
[35]   A MULTIVARIATE-ANALYSIS OF RISK-FACTORS FOR HEPATOCELLULAR CARCINOGENESIS - A PROSPECTIVE OBSERVATION OF 795 PATIENTS WITH VIRAL AND ALCOHOLIC CIRRHOSIS [J].
IKEDA, K ;
SAITOH, S ;
KOIDA, I ;
ARASE, Y ;
TSUBOTA, A ;
CHAYAMA, K ;
KUMADA, H ;
KAWANISHI, M .
HEPATOLOGY, 1993, 18 (01) :47-53
[36]  
IUCHI K, 1987, CANCER, V60, P1771, DOI 10.1002/1097-0142(19871015)60:8<1771::AID-CNCR2820600817>3.0.CO
[37]  
2-2
[38]   Deletion and single nucleotide substitution at G:C in the kidney of gpt delta transgenic mice after ferric nitrilotriacetate treatment [J].
Jiang, Li ;
Zhong, Yi ;
Akatsuka, Shinya ;
Liu, Yu-Ting ;
Dutta, Khokon Kumar ;
Lee, Wen-Hua ;
Onuki, Janice ;
Masumura, Ken-Ichi ;
Nohmi, Takehiko ;
Toyokuni, Shinya .
CANCER SCIENCE, 2006, 97 (11) :1159-1167
[39]   Functional and physical interactions of the ARF tumor suppressor with p53 and Mdm2 [J].
Kamijo, T ;
Weber, JD ;
Zambetti, G ;
Zindy, F ;
Roussel, MF ;
Sherr, CJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (14) :8292-8297
[40]   Hematologic and cytogenetic responses to imatinib mesylate in chronic myelogenous leukemia. [J].
Kantarjian, H ;
Sawyers, C ;
Hochhaus, A ;
Guilhot, F ;
Schiffer, C ;
Gambacorti-Passerini, C ;
Niederwieser, D ;
Resta, D ;
Capdeville, R ;
Zoellner, U ;
Talpaz, M ;
Druker, B .
NEW ENGLAND JOURNAL OF MEDICINE, 2002, 346 (09) :645-652