Mutation hotspots in the p53 gene in tumors of different origin: correlation with evolutionary conservation and signs of positive selection

被引:27
作者
Glazko, GV
Koonin, EV
Rogozin, IB
机构
[1] Stowers Inst Med Res, Kansas City, MO 64110 USA
[2] Russian Acad Sci, Siberian Branch, Inst Cytol & Genet, Novosibirsk 630090, Russia
[3] NIH, Natl Ctr Biotechnol Informat, Natl Lib Med, Bethesda, MD 20894 USA
来源
BIOCHIMICA ET BIOPHYSICA ACTA-GENE STRUCTURE AND EXPRESSION | 2004年 / 1679卷 / 02期
基金
俄罗斯基础研究基金会;
关键词
hotspot; p53; gene; p63/73 family members; classification; cancer; comparative analysis;
D O I
10.1016/j.bbaexp.2004.05.004
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
We present a classification analysis of the mutation spectra of the p53 gene and construct maps of hotspots for the germline (Li-Fraumein syndrome), different types of tumors and their derived cell lines. While spectra from solid tumors share common hotspots with the germline spectrum, they also contain unique sets of somatic hotspots that are not observed in the germline. All these hotspots correspond to amino acid replacements in the DNA-binding interface of p53. The mutation spectra of lymphomas and cell lines derived from lymphomas and lung cancers contained few hotspots compared to solid tumors. Thus, the distribution of hotspots in the p53 gene appears to depend on the tumor type and cell growth conditions; this specificity is missed by the bulk hotspot analysis. A negative correlation was detected between the amino acid replacement propensity in tumors and evolutionary variability: the hotspots are located in the positions that are highly conserved in p53 and its paralogs, p63 and p73. In all the mutation spectra, substitutions leading to amino acid replacements strongly dominate over silent substitutions, indicating that functional sites evolving under strong purifying selection are subject to intensive positive selection in p53-dependent tumors. These results are compatible with the gain-of-function concept of the role of p53 in tumorigenesis. (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:95 / 106
页数:12
相关论文
共 83 条
[21]  
Glazko G V, 1999, Tsitol Genet, V33, P14
[22]   The subclass approach for mutational spectrum analysis: Application of the SEM algorithm [J].
Glazko, GB ;
Milanesi, L ;
Rogozin, IB .
JOURNAL OF THEORETICAL BIOLOGY, 1998, 192 (04) :475-487
[23]   Detailed computational study of p53 and p16:: using evolutionary sequence analysis and disease-associated mutations to predict the functional consequences of allelic variants [J].
Greenblatt, MS ;
Beaudet, JG ;
Gump, JR ;
Godin, KS ;
Trombley, L ;
Koh, J ;
Bond, JP .
ONCOGENE, 2003, 22 (08) :1150-1163
[24]   TP53: a key gene in human cancer [J].
Guimaraes, DP ;
Hainaut, P .
BIOCHIMIE, 2002, 84 (01) :83-93
[25]   IARC Database of p53 gene mutations in human tumors and cell lines: updated compilation, revised formats and new visualisation tools [J].
Hainaut, P ;
Hernandez, T ;
Robinson, A ;
Rodriguez-Tome, P ;
Flores, T ;
Hollstein, M ;
Harris, CC ;
Montesano, R .
NUCLEIC ACIDS RESEARCH, 1998, 26 (01) :205-213
[26]   Patterns of p53 G→T transversions in lung cancers reflect the primary mutagenic signature of DNA-damage by tobacco smoke [J].
Hainaut, P ;
Pfeifer, GP .
CARCINOGENESIS, 2001, 22 (03) :367-374
[27]   The hallmarks of cancer [J].
Hanahan, D ;
Weinberg, RA .
CELL, 2000, 100 (01) :57-70
[28]   p53; From inductive signal to cellular effect [J].
Hansen, R ;
Oren, M .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 1997, 7 (01) :46-51
[29]   New approaches to understanding p53 gene tumor mutation spectra [J].
Hollstein, M ;
Hergenhahn, M ;
Yang, Q ;
Bartsch, H ;
Wang, ZQ ;
Hainaut, P .
MUTATION RESEARCH-FUNDAMENTAL AND MOLECULAR MECHANISMS OF MUTAGENESIS, 1999, 431 (02) :199-209
[30]   MUTATIONAL SPECIFICITY OF ALKYLATING-AGENTS AND THE INFLUENCE OF DNA-REPAIR [J].
HORSFALL, MJ ;
GORDON, AJE ;
BURNS, PA ;
ZIELENSKA, M ;
VANDERVLIET, GME ;
GLICKMAN, BW .
ENVIRONMENTAL AND MOLECULAR MUTAGENESIS, 1990, 15 (02) :107-122