Conversion of Normal To Malignant Phenotype: Telomere Shortening, Telomerase Activation, and Genomic Instability During Immortalization of Human Oral Keratinocytes
Open Access
- 1 January 2001
- journal article
- other
- Published by SAGE Publications in Critical Reviews in Oral Biology & Medicine
- Vol. 12 (1) , 38-54
- https://doi.org/10.1177/10454411010120010301
Abstract
Normal somatic cells terminate their replicative life span through a pathway leading to cellular senescence, which is triggered by activation of p53 and/or pRb in response to critically shortened telomere DNA. Potentially neoplastic cells must first overcome the senescence checkpoint mechanisms and subsequently activate telomerase to propagate indefinitely. Although telomerase activation is closely associated with cellular immortality, telomerase alone is not sufficient to warrant tumorigenicity. Environmental factors, including chemical carcinogens and viral infection, often contribute to aberrant changes leading to tumorigenic conversion of normal cells. Of particular importance in oral cancer development are tobacco-related chemical carcinogens and human papillomavirus (HPV) infection. To describe the molecular mechanisms by which these environmental factors facilitate the genesis of oral cancer, we first established an in vitro multistep oral carcinogenesis model by sequential exposure of normal human oral keratinocytes (NHOK) to "high risk" HPV and chemical carcinogens. Upon introduction of the HPV genome, the cells bypassed the senescence checkpoint and entered into an extended, but not immortal, life span during which telomere DNA continued to shorten. In a few immortal clones surviving beyond the crisis, we found a marked elevation of telomerase activity and stabilization of telomere length. Furthermore, the E6 and E7 oncoproteins of "high risk" HPV disrupted the cell cycle control and DNA repair in immortalized HOK, and enhanced mutation frequency resulting from genomic instability. However, HPV infection alone failed to give rise to a tumorigenic cell population, which required further exposure to chemical carcinogens in addition to HPV infection. Analysis of the data presented suggests that oral carcinogenesis is a series of discrete genetic alterations that result from a continued genotoxic challenge by environmental risk factors. Our in vitro model may be useful for investigators with interest in furthering our understanding of oral carcinogenesis.Keywords
This publication has 127 references indexed in Scilit:
- In Vitro Replication and Differentiation of Normal Human Oral KeratinocytesExperimental Cell Research, 2000
- Terminal Differentiation of Normal Human Oral Keratinocytes Is Associated with Enhanced Cellular TGF-β and Phospholipase C-γ1 Levels and Apoptotic Cell DeathExperimental Cell Research, 1999
- Papillomavirus infections — a major cause of human cancersBiochimica et Biophysica Acta (BBA) - Reviews on Cancer, 1996
- Telomerase: immortality enzyme or oncogene?Nature Genetics, 1995
- Investigation of the Role of G1/S Cell Cycle Mediators in Cellular SenescenceExperimental Cell Research, 1993
- Functions and proteins of herpes simplex virus type-1 that are involved in raising the mutation frequency of infected cellsVirus Research, 1993
- Cooperative effect of antisense-Rb and antisense-p53 oligomers on the extension of life span in human diploid fibroblasts, TIG-1Biochemical and Biophysical Research Communications, 1991
- Telomeres shorten during ageing of human fibroblastsNature, 1990
- A theory of marginotomyJournal of Theoretical Biology, 1973
- Doubling potential, calendar time, and senescence of human diploid cells in cultureExperimental Cell Research, 1973