Stepwise DNA Methylation Changes Are Linked to Escape from Defined Proliferation Barriers and Mammary Epithelial Cell Immortalization

被引:90
作者
Novak, Petr [1 ,4 ]
Jensen, Taylor J. [1 ,2 ]
Garbe, James C. [3 ]
Stampfer, Martha R. [1 ,3 ]
Futscher, Bernard W. [1 ,2 ]
机构
[1] Univ Arizona, Arizona Canc Ctr, Tucson, AZ 85724 USA
[2] Univ Arizona, Dept Pharmacol & Toxicol, Coll Pharm, Tucson, AZ 85724 USA
[3] Univ Calif Berkeley, Lawrence Berkeley Lab, Div Life Sci, Berkeley, CA 94720 USA
[4] Biol Ctr ASCR, Inst Plant Mol Biol, Ceske Budejovice, Czech Republic
关键词
HUMAN BREAST-CANCER; EARLY EVENT; EPIGENETIC INACTIVATION; COLORECTAL-CANCER; P53; FUNCTION; GENE; TRANSFORMATION; SENESCENCE; HYPERMETHYLATION; P16(INK4A);
D O I
10.1158/0008-5472.CAN-08-4977
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The timing and progression of DNA methylation changes during carcinogenesis are not completely understood. To develop a timeline of aberrant DNA methylation events during malignant transformation, we analyzed genome-wide DNA methylation patterns in an isogenic human mammary epithelial cell (HMEC) culture model of transformation. To acquire immortality and malignancy, the cultured finite lifespan HMEC must overcome two distinct proliferation barriers. The first barrier, stasis, is mediated by the retinoblastoma protein and can be overcome by loss of p16(INK4A) expression. HMEC that escape stasis and continue to proliferate become genomically unstable before encountering a second more stringent proliferation barrier, telomere dysfunction due to telomere attrition. re cells that acquire telomerase expression may escape this barrier, become immortal, and develop further malignant properties. Our analysis of HMEC transitioning from finite lifespan to malignantly transformed showed that aberrant DNA methylation changes occur in a stepwise fashion early in the transformation process. The first aberrant DNA methylation step coincides with overcoming stasis, and results in few to hundreds of changes, depending on how stasis was overcome. A second step coincides with immortalization and results in hundreds of additional DNA methylation changes regardless of the immortalization pathway. A majority of these DNA methylation changes are also found in malignant breast cancer cells. These results show that large-scale epigenetic remodeling occurs in the earliest steps of mammary carcinogenesis, temporally links DNA methylation changes and overcoming cellular proliferation barriers, and provides a bank of potential epigenetic biomarkers that may prove useful in breast cancer risk assessment. [Cancer Res 2009;69(12):5251-8]
引用
收藏
页码:5251 / 5258
页数:8
相关论文
共 46 条
[1]  
Baylin SB, 1998, ADV CANCER RES, V72, P141
[2]   Morphologically normal-appearing mammary epithelial cells obtained from high-risk women exhibit methylation silencing of INK4a/ARF [J].
Bean, Gregory R. ;
Bryson, Andrew D. ;
Pilie, Patrick G. ;
Goldenberg, Vanessa ;
Baker, Joseph C., Jr. ;
Ibarra, Catherine ;
Brander, Danielle M. U. ;
Paisie, Carolyn ;
Case, Natalie R. ;
Gauthier, Mona ;
Reynolds, Paul A. ;
Dietze, Eric ;
Ostrander, Julie ;
Scott, Victoria ;
Wilke, Lee G. ;
Yee, Lisa ;
Kimler, Bruce F. ;
Fabian, Carol J. ;
Zalles, Carola M. ;
Broadwater, Gloria ;
Tisty, Thea D. ;
Seewaldt, Victoria L. .
CLINICAL CANCER RESEARCH, 2007, 13 (22) :6834-6841
[3]   Increased p16 expression with first senescence arrest in human mammary epithelial cells and extended growth capacity with p16 inactivation [J].
Brenner, AJ ;
Stampfer, MR ;
Aldaz, CM .
ONCOGENE, 1998, 17 (02) :199-205
[4]   In situ analyses of genome instability in breast cancer [J].
Chin, K ;
de Solorzano, CO ;
Knowles, D ;
Jones, A ;
Chou, W ;
Rodriguez, EG ;
Kuo, WL ;
Ljung, BM ;
Chew, K ;
Myambo, K ;
Miranda, M ;
Krig, S ;
Garbe, J ;
Stampfer, M ;
Yaswen, P ;
Gray, JW ;
Lockett, SJ .
NATURE GENETICS, 2004, 36 (09) :984-988
[5]  
CLARK R, 1988, CANCER RES, V48, P4689
[6]   Genomic profiling of CpG methylation and allelic specificity using quantitative high-throughput mass spectrometry: critical evaluation and improvements [J].
Coolen, Marcel W. ;
Statham, Aaron L. ;
Gardiner-Garden, Margaret ;
Clark, Susan J. .
NUCLEIC ACIDS RESEARCH, 2007, 35 (18)
[7]   Aberrant CpG-island methylation has non-random and tumour-type-specific patterns [J].
Costello, JF ;
Frühwald, MC ;
Smiraglia, DJ ;
Rush, LJ ;
Robertson, GP ;
Gao, X ;
Wright, FA ;
Feramisco, JD ;
Peltomäki, P ;
Lang, JC ;
Schuller, DE ;
Yu, L ;
Bloomfield, CD ;
Caligiuri, MA ;
Yates, A ;
Nishikawa, R ;
Huang, HJS ;
Petrelli, NJ ;
Zhang, XL ;
O'Dorisio, MS ;
Held, WA ;
Cavenee, WK ;
Plass, C .
NATURE GENETICS, 2000, 24 (02) :132-138
[8]   Using GOstats to test gene lists for GO term association [J].
Falcon, S. ;
Gentleman, R. .
BIOINFORMATICS, 2007, 23 (02) :257-258
[9]   The epigenetic progenitor origin of human cancer [J].
Feinberg, AP ;
Ohlsson, R ;
Henikoff, S .
NATURE REVIEWS GENETICS, 2006, 7 (01) :21-33
[10]   Epigenetic remodeling in colorectal cancer results in coordinate gene suppression across an entire chromosome band [J].
Frigola, J ;
Song, J ;
Stirzaker, C ;
Hinshelwood, RA ;
Peinado, MA ;
Clark, SJ .
NATURE GENETICS, 2006, 38 (05) :540-549