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Published on: July 28, 2010
Genetic and epigenetic changes of intercellular communication genes during multistage carcinogenesis
H Yamasaki1, Y Omori, M L Zaidan-Dagli
1Unit of Multistage Carcinogenesis, International Agency for Research on Cancer, Lyon, France.
Abstract:
During multistage carcinogenesis, the functions of several key genes involved in cell growth control must be damaged. Such genes include not only those involved in cell cycle control of individual cells, but also those involved in the coordination of cell growth throughout a given tissue through cell-cell communication. The most intimate form of intercellular communication is mediated by gap junctions. Gap junctional intercellular communication (GJIC) is known to transfer small water soluble molecules, including cAMP and IP3, from the cytoplasm of one cell to that of its neighbors; the growth of a given GJIC-associated cell is thus kept in check by other GJIC-connected cells. Most tumor cells have a reduced ability to communicate among themselves and/or with surrounding normal cells, confirming the importance of intact GJIC in growth control. When connexin (gap junction protein) genes are transfected into such cells, normal cell growth control is often recovered. Certain dominant-negative mutant connexin genes can reverse such tumor suppression. While these results suggest that connexin genes form a family of tumor suppressor genes, so far we have found no connexin gene mutations in human tumors; only two connexin gene mutations were found in chemically induced rat tumors. On the other hand, our recent studies suggest that connexin genes may be inactivated by hypermethylation of their promoter regions, suggesting that epigenetic inactivation of connexin genes may be a mechanism of GJIC disturbance in certain tumors. However, in many tumor cells connexins are normally expressed but aberrantly localized. The mechanisms of aberrant localization of connexins include lack of an appropriate cell-cell recognition apparatus and aberrant phosphorylation of connexins. These results suggest that GJIC disorders may occur not only because of aberrant expression of connexin genes themselves, but also as a result of disruption of various control mechanisms of the protein functions.
Insights
Gap junctional intercellular communication (GJIC) is crucial for controlling cell growth. Disruptions in GJIC, often due to epigenetic changes or protein mislocalization, are linked to cancer development.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Multistage carcinogenesis involves damage to cell growth control genes.
- Intercellular communication, particularly gap junctional intercellular communication (GJIC), is vital for coordinating tissue growth.
- Tumor cells often exhibit reduced communication, highlighting the importance of GJIC in growth regulation.
Purpose of the Study:
- To investigate the role of connexin genes and GJIC in cancer development.
- To explore mechanisms underlying GJIC disruption in tumors, including gene expression, epigenetic modifications, and protein localization.
Main Methods:
- Analysis of connexin gene function through transfection studies.
- Investigation of connexin gene mutations in human and rat tumors.
- Examination of epigenetic modifications, specifically promoter hypermethylation, of connexin genes.
- Assessment of connexin protein localization and phosphorylation in tumor cells.
Main Results:
- Connexin gene transfection can restore normal cell growth control in tumor cells.
- Few connexin gene mutations are found in human tumors, but some exist in chemically induced rat tumors.
- Epigenetic inactivation via promoter hypermethylation is a potential mechanism for GJIC disruption.
- Aberrant connexin localization, due to issues with cell recognition or phosphorylation, also contributes to GJIC disorders.
Conclusions:
- Connexin genes function as tumor suppressors, but their inactivation in cancer is complex.
- Mechanisms of GJIC disruption involve not only gene expression but also epigenetic regulation and protein function/localization.
- Understanding these mechanisms offers potential therapeutic targets for cancer treatment.
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