Radiation-induced genomic instability and its implications for radiation carcinogenesis

被引:179
作者
Huang, L
Snyder, AR
Morgan, WF
机构
[1] Univ Maryland, Grad Program Human Genet, Baltimore, MD 21201 USA
[2] Univ Maryland, Radiat Oncol Res Lab, Baltimore, MD 21201 USA
[3] Univ Maryland, Mol & Cell Biol Grad Program, Baltimore, MD 21201 USA
[4] Univ Maryland, Greenebaum Canc Ctr, Baltimore, MD 21201 USA
关键词
ionizing radiation; chromosome instability; chromosome breakage syndromes; epigenetic factors;
D O I
10.1038/sj.onc.1206697
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
Radiation-induced genomic instability is characterized by an increased rate of genetic alterations including cytogenetic rearrangements, mutations, gene amplifications, transformation and cell death in the progeny of irradiated cells multiple generations after the initial insult. Chromosomal rearrangements are the best-characterized end point of radiation-induced genomic instability, and many of the rearrangements described are similar to those found in human cancers. Chromosome breakage syndromes are defined by chromosome instability, and individuals with these diseases are cancer prone. Consequently, chromosomal instability as a phenotype may underlie some fraction of those changes leading to cancer. Here we attempt to relate current knowledge regarding radiation-induced chromosome instability with the emerging molecular information on the chromosome breakage syndromes. The goal is to understand how genetic and epigenetic factors might influence the onset of chromosome instability and the role of chromosomal instability in carcinogenesis.
引用
收藏
页码:5848 / 5854
页数:7
相关论文
共 86 条
[1]   Intercellular communication is involved in the bystander regulation of gene expression in human cells exposed to very low fluences of alpha particles [J].
Azzam, EI ;
de Toledo, SM ;
Gooding, T ;
Little, JB .
RADIATION RESEARCH, 1998, 150 (05) :497-504
[2]   Direct evidence for the participation of gap junction-mediated intercellular communication in the transmission of damage signals from α-particle irradiated to nonirradiated cells [J].
Azzam, EI ;
de Toledo, SM ;
Little, JB .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (02) :473-478
[3]   Genetic basis of Fanconi anemia [J].
Bagby, GC .
CURRENT OPINION IN HEMATOLOGY, 2003, 10 (01) :68-76
[4]  
Barcellos-Hoff MH, 2001, RADIAT RES, V156, P618, DOI 10.1667/0033-7587(2001)156[0618:ESTTMA]2.0.CO
[5]  
2
[6]   Current Issues in Mutagenesis and Carcinogenesis No. 98 - Radiation-induced genomic instability: a paradigm-breaking phenomenon and its relevance to environmentally induced cancer [J].
Baverstock, K .
MUTATION RESEARCH-FUNDAMENTAL AND MOLECULAR MECHANISMS OF MUTAGENESIS, 2000, 454 (1-2) :89-109
[7]   Genetic instability and darwinian selection in tumours (Reprinted from Trends in Biochemical Science, vol 12, Dec., 1999) [J].
Cahill, DP ;
Kinzler, KW ;
Vogelstein, B ;
Lengauer, C .
TRENDS IN CELL BIOLOGY, 1999, 9 (12) :M57-M60
[8]   Mutations of mitotic checkpoint genes in human cancers [J].
Cahill, DP ;
Lengauer, C ;
Yu, J ;
Riggins, GJ ;
Willson, JKV ;
Markowitz, SD ;
Kinzler, KW ;
Vogelstein, B .
NATURE, 1998, 392 (6673) :300-303
[9]   The hMre11/hRad50 protein complex and Nijmegen breakage syndrome: Linkage of double-strand break repair to the cellular DNA damage response [J].
Carney, JP ;
Maser, RS ;
Olivares, H ;
Davis, EM ;
Le Beau, M ;
Yates, JR ;
Hays, L ;
Morgan, WF ;
Petrini, JHJ .
CELL, 1998, 93 (03) :477-486
[10]   Radiation-induced genomic instability and persisting oxidative stress in primary bone marrow cultures [J].
Clutton, SM ;
Townsend, KMS ;
Walker, C ;
Ansell, JD ;
Wright, EG .
CARCINOGENESIS, 1996, 17 (08) :1633-1639