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Abstract
Tumourigenic transformation of normal cells into cancer typically involves several steps resulting in acquisition of unlimited growth potential, evasion of apoptosis and non-responsiveness to growth inhibitory signals. Both genetic and epigenetic changes can contribute to cancer development and progression. Given the vast genetic heterogeneity of human cancers and difficulty to monitor cancer-initiating events in vivo, the precise relationship between acquisition of genetic mutations and the temporal progression of epigenetic alterations in transformed cells is largely unclear. Here, we use an in vitro model system to investigate the contribution of cellular immortality and oncogenic transformation of primary human cells to epigenetic reprogramming of DNA methylation and gene expression. Our data demonstrate that extension of replicative life span of the cells is sufficient to induce accumulation of DNA methylation at gene promoters and large-scale changes in gene expression in a time-dependent manner. In contrast, continuous expression of cooperating oncogenes in immortalized cells, although essential for anchorage-independent growth and evasion of apoptosis, does not affect de novo DNA methylation at promoters and induces subtle expression changes. Taken together, these observations imply that cellular immortality promotes epigenetic adaptation to highly proliferative state, whereas transforming oncogenes confer additional properties to transformed human cells.
Original language | English |
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Pages (from-to) | 3529-3541 |
Number of pages | 13 |
Journal | Nucleic Acids Research |
Volume | 42 |
Issue number | 6 |
DOIs | |
Publication status | Published - Apr 2014 |
Keywords / Materials (for Non-textual outputs)
- BREAST-CANCER
- HUMAN FIBROBLASTS
- PROSTATE-CANCER
- STEM-CELLS
- CPG ISLAND
- GENOME
- HYPERMETHYLATION
- HYPOMETHYLATION
- TRANSCRIPTION
- PLURIPOTENT
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Dive into the research topics of 'Immortality, but not oncogenic transformation, of primary human cells leads to epigenetic reprogramming of DNA methylation and gene expression'. Together they form a unique fingerprint.Projects
- 2 Finished
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Core funding renewal for the Wellcome Trust Centre for Cell Biology
1/10/11 → 30/04/17
Project: Research
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Epigenetic gene silencing in normal cells and cancer
Stancheva, I.
1/04/08 → 30/09/14
Project: Research