Epidemiology and molecular pathology at crossroads to establish causation: molecular mechanisms of malignant transformation
- 23 August 2004
- journal article
- review article
- Published by Springer Nature in Oncogene
- Vol. 23 (38) , 6484-6491
- https://doi.org/10.1038/sj.onc.1207855
Abstract
Epidemiology is a very reliable science for the identification of carcinogens. Epidemiological studies require that the effect, cancer in this case, has already occurred, when of course it would be more desirable to identify potential carcinogenic substances at an earlier stage before they have caused a large number of malignancies and thus become identifiable by epidemiological studies. In the past 30 years, molecular pathology (which includes chemistry, biochemistry, molecular biology, molecular virology, molecular genetics, epigenetics, genomics, proteomics, and other molecular-based approaches) has identified some key alterations that are required for cellular transformation and malignancy. Agents that specifically interfere with some of these mechanisms are suspected human carcinogens. It can be stated that tumor formation requires the following steps: (1) inactivation of Rb and p53 cellular pathways; (2) activation of Ras and/or other growth promoting pathways; (3) inactivation of phosphatase 2A that causes changes in the phosphorylation and activity of several cellular proteins; (4) evasion of apoptosis; (5) telomerase activation or alternative mechanisms of cellular immortalization; (6) angiogenic activity; and (7) the ability to invade surrounding tissues and to metastasize. Here, we review the molecular mechanisms of cellular transformation. The integration of this knowledge with classical epidemiology and animal studies should permit a more rapid and accurate identification of human carcinogens.Keywords
This publication has 61 references indexed in Scilit:
- Repression of the Human Papillomavirus E6 Gene Initiates p53-Dependent, Telomerase-Independent Senescence and Apoptosis in HeLa Cervical Carcinoma CellsJournal of Virology, 2004
- Comparative biology of mouse versus human cells: modelling human cancer in miceNature Reviews Cancer, 2003
- Inflammation and cancerNature, 2002
- Many ways to telomere dysfunction: in vivo studies using mouse modelsOncogene, 2002
- Role of p14ARF in Replicative and Induced Senescence of Human FibroblastsMolecular and Cellular Biology, 2001
- Macrophage infiltration correlates with tumor stage and angiogenesis in human malignant melanoma: Possible involvement of TNFα and IL-1αInternational Journal of Cancer, 2000
- A survey of telomerase activity in human cancerPublished by Elsevier ,1997
- SV40-lnduced Immortalization of Human CellsCritical Reviews™ in Oncogenesis, 1994
- TAN-1, the human homolog of the Drosophila Notch gene, is broken by chromosomal translocations in T lymphoblastic neoplasmsPublished by Elsevier ,1991
- Telomeres shorten during ageing of human fibroblastsNature, 1990