Reverse transformation and genome exposure in the C6 glial tumor cell line
M M Haag1, A Krystosek, E Arenson
1Cytogenetics Laboratory, Children's Hospital, Denver, Colorado 80218.
Abstract:
Reexpression of growth control and differentiation in response to physiological inducers can be demonstrated in some malignant cell lines, showing that they are not irreversibly transformed. This switch in phenotype is likely to reflect a changing pattern of gene expression, but it has not been known whether such cellular transitions involve major or only minor modulation of chromatin structure. We have studied growth control and accessibility of chromatin to DNase I in C6 glioma cells subjected to different growth regimens using an in situ nick translation assay to label the most exposed regions of nuclear chromatin. In fibroblasts and primary glia, exposed chromatin was localized mainly at the nuclear lamina. This readily labeled DNA structure was largely lacking in the malignant C6 glioma. When C6 cells were treated with dibutyryl cyclic AMP, exposed chromatin was reestablished around the nuclear periphery. This restoration of a normal genome exposure pattern required cytoskeletal integrity. Thus large-scale nuclear reorganization events proceed in parallel with phenotypic normalization. The changes in cell morphology, growth control, cytoskeletal organization, and chromatin exposure and localization are similar to the reverse transformation reaction in CHO-K1 cells, which is also regulated by the cyclic nucleotide system. Hydrocortisone and dexamethasone also restored genome exposure in C6 but less markedly than cAMP derivatives. Diverse transformed cells can thus respond to growth control stimuli with similar nuclear restructuring events, which presumably underlie changes in gene expression. Reverse transformation and redifferentiation appear to be alternative terms describing essentially the same biological phenomenon.
Insights
Malignant cells can regain normal growth control and differentiation. This involves significant changes in chromatin structure and nuclear organization, similar to reverse transformation. This suggests transformed cells are not irreversibly altered.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Malignant cell lines can reexpress growth control and differentiation, indicating they are not irreversibly transformed.
- Cellular transitions involve changes in gene expression, but the extent of chromatin structure modulation was unknown.
Purpose of the Study:
- To investigate chromatin structure changes during phenotypic normalization in C6 glioma cells.
- To determine if cellular transitions involve major or minor modulation of chromatin structure.
Main Methods:
- Studied growth control and chromatin accessibility to DNase I in C6 glioma cells.
- Utilized an in situ nick translation assay to label exposed nuclear chromatin regions.
- Examined the role of cytoskeletal integrity in chromatin reorganization.
Main Results:
- Malignant C6 glioma cells showed a lack of exposed chromatin at the nuclear lamina, unlike fibroblasts and primary glia.
- Treatment with dibutyryl cyclic AMP reestablished exposed chromatin at the nuclear periphery, requiring cytoskeletal integrity.
- Hydrocortisone and dexamethasone also restored genome exposure, though less effectively than cAMP derivatives.
Conclusions:
- Phenotypic normalization in transformed cells involves large-scale nuclear reorganization and chromatin restructuring.
- These nuclear changes are linked to restored growth control and differentiation.
- Reverse transformation and redifferentiation represent similar biological phenomena involving nuclear restructuring.
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