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Establishment of okadaic acid resistant cell clones using a cDNA expression library
T Sandal1, R Ahlgren, J Lillehaug
1Department of Anatomy and Cell Biology, University of Bergen, Arstadveien 19, N-5009 Bergen, Norway.
Abstract:
The mechanism whereby the universal apoptogen and serine/threonine phosphatase inhibitor okadaic acid (OA) kills cells, is still unclear. To create a novel tool for probing of OA action, fibroblasts were selected for OA-resistance after infection with a retroviral Jurkat T-cell cDNA expression library. Twenty-one clones were selected. Two of these (OAR1, OAR2) were studied in detail. OAR1 and 2 had each a retrovirally introduced short cDNA, corresponding to a human gene (oar1 and oar2, respectively) with unknown function. Reintroduction of oar1 or oar2 cDNA into wild-type cells reproduced the OA-resistant phenotype. OAR1 and 2 were cross-resistant to other phosphatase inhibitors (calyculin A, cantharidin), but not to staurosporine or microinjected Cytochrome c, thus, indicating a disturbance in a limited number of death pathways, upstream or independent of apaf-1/caspases-3/9. The action of OA involved caspase-dependent and caspase-independent components. Both components were less efficient in OAR1 and 2, than in wild-type cells. Subtle differences existed between OA-induced phosphoprotein patterns in wild-type cells, OAR1, and OAR2, indicating that a narrow selection of protein phosphorylation events had been targeted. We propose that the clones have defects in a hitherto non-elucidated signal pathway linking OA-induced protein phosphorylation to initiation of a death execution pathway provided with a caspase-dependent amplification loop. The novel OA-resistant cell clones will be used to elucidate the significance for apoptosis of oar1 and 2, their link to altered protein phosphorylation, and the potential link of the latter to initiation of apoptosis.
Insights
Researchers developed okadaic acid-resistant cells to study how this toxin kills cells. These new cell lines reveal potential new pathways involved in cell death and protein phosphorylation.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Okadaic acid (OA) is a potent apoptogen and serine/threonine phosphatase inhibitor.
- The precise mechanism by which OA induces cell death remains largely unknown.
- Understanding OA's action is crucial for dissecting apoptosis pathways.
Purpose of the Study:
- To generate novel tools for investigating OA's cellular effects.
- To identify genes and pathways involved in OA resistance and sensitivity.
- To elucidate the relationship between OA-induced protein phosphorylation and apoptosis initiation.
Main Methods:
- Retroviral cDNA library screening to select for OA-resistant fibroblasts.
- Detailed characterization of two resistant clones (OAR1, OAR2).
- Gene reintroduction and cross-resistance assays with other death inducers.
Main Results:
- Identified two novel genes, oar1 and oar2, conferring OA resistance.
- OAR1 and OAR2 cells exhibited cross-resistance to other phosphatase inhibitors but not staurosporine or cytochrome c.
- OA's cell-killing effects, both caspase-dependent and independent, were attenuated in OAR1 and OAR2 cells.
- Distinct phosphoprotein patterns were observed in OA-treated wild-type versus resistant cells.
Conclusions:
- OAR1 and OAR2 cells possess defects in a novel signaling pathway linking OA-induced phosphorylation to apoptosis.
- The identified genes, oar1 and oar2, play a role in regulating OA sensitivity and potentially other death pathways.
- These findings provide new insights into the complex mechanisms of apoptosis and protein phosphorylation regulation.