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The c-myc gene regulates the polyamine pathway in DMSO-induced apoptosis
O Trubiani1, C Pieri, M Rapino
1Dipartimento di Scienze Odontostomatologiche, Università di Chieti, Italy.
Abstract:
It is accepted that apoptosis is a gene-controlled process of cellular self-destruction. It occurs during physiological regulation and in pathological situations in the life of a cell. In the immune system, several different intracellular and extracellular factors have been associated with the induction of apoptosis, and the final responses depend on the cell system and the acquired signals. In lymphoid cells, dexamethasone-induced apoptosis is associated with c-myc downregulation in cells that remain in G0-G1 until the point of death. Ornithine decarboxylase (ODC), a key enzyme involved in polyamine biosynthesis, is regulated by c-myc, which is a transcriptional activator implicated not only in the control of cell proliferation and differentiation but also in programmed cell death. As dimethylsulphoxide (DMSO) induces apoptosis in the RPMI-8402 human pre-T cell line, the present study analysed the involvement of the c-myc proto-oncogene and polyamine pathway as mediators of apoptosis. Cell growth, programmed cell death, c-myc expression, ODC activity and intracellular polyamine content were detected after DMSO and difluoromethylornithine (DFMO) treatment. DMSO-treated cells exhibit a decrease in ODC activity and polyamine levels associated with cell growth arrest and programmed cell death induction. The expression of c-myc proto-oncogene, as its mRNA or protein, is specifically down-regulated. DFMO, a well defined polyamine biosynthesis inhibitor, completely blocks ODC activity, resulting in growth inhibition but not apoptosis. Moreover, in these samples no evidence of changes of c-myc expression were found. The results obtained suggest that, in RPMI-8402 cells, DMSO provokes a c-myc-dependent decrease of ODC activity followed by a depletion of intracellular polyamine levels, associated with programmed cell death and cell growth arrest.
Insights
Dimethylsulphoxide (DMSO) induces apoptosis in human pre-T cells by downregulating c-myc expression, decreasing ornithine decarboxylase (ODC) activity, and reducing polyamine levels, leading to cell death. Difluoromethylornithine (DFMO) inhibits ODC but does not induce apoptosis or alter c-myc expression.
Area of Science:
- Cell Biology
- Molecular Biology
- Immunology
Background:
- Apoptosis is a gene-controlled cellular self-destruction process crucial for physiological regulation and pathological conditions.
- In the immune system, various factors induce apoptosis, with outcomes depending on cell type and signals.
- Dexamethasone-induced apoptosis in lymphoid cells involves c-myc downregulation and cell cycle arrest.
Purpose of the Study:
- To investigate the roles of the c-myc proto-oncogene and the polyamine pathway in DMSO-induced apoptosis in the RPMI-8402 human pre-T cell line.
- To analyze the effects of DMSO and difluoromethylornithine (DFMO) on cell growth, apoptosis, c-myc expression, ornithine decarboxylase (ODC) activity, and polyamine content.
Main Methods:
- Treatment of RPMI-8402 cells with DMSO and DFMO.
- Measurement of cell growth, programmed cell death, c-myc mRNA and protein expression, ODC activity, and intracellular polyamine levels.
Main Results:
- DMSO treatment led to decreased ODC activity, reduced polyamine levels, cell growth arrest, and apoptosis induction.
- DMSO specifically downregulated c-myc proto-oncogene expression at both mRNA and protein levels.
- DFMO inhibited ODC activity, causing growth inhibition but not apoptosis, with no observed changes in c-myc expression.
Conclusions:
- DMSO induces apoptosis in RPMI-8402 cells via a c-myc-dependent mechanism, involving decreased ODC activity and polyamine depletion.
- The study highlights the interplay between c-myc, ODC, polyamine metabolism, and apoptosis in T-lymphoid cells.
- DFMO's inability to induce apoptosis suggests that ODC inhibition alone is insufficient without c-myc modulation.