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The deafness gene DFNA5 induces programmed cell death through mitochondria and MAPK-related pathways
Sofie Van Rossom1, Ken Op de Beeck2, Vesna Hristovska3
1Department of Biomedical Sciences, Center of Medical Genetics, University of Antwerp Antwerp, Belgium ; Functional Biology, Department of Biology KU Leuven, Heverlee, Belgium.
Abstract:
Cell death exists in many different forms. Some are accidental, but most of them have some kind of regulation and are called programmed cell death. Programmed cell death (PCD) is a very diverse and complex mechanism and must be tightly regulated. This study investigated PCD induced by DFNA5, a gene responsible for autosomal dominant hearing loss (HL) and a tumor suppressor gene (TSG) involved in frequent forms of cancer. Mutations in DFNA5 lead to exon 8 skipping and result in HL in several families. Expression of mutant DFNA5, a cDNA construct where exon 8 is deleted, was linked to PCD both in human cell lines and in Saccharomyces cerevisiae. To further investigate the cell death mechanism induced by mutant DFNA5, we performed a microarray study in both models. We used wild-type DFNA5, which does not induce cell death, as a reference. Our data showed that the yeast pathways related to mitochondrial ATP-coupled electron transport chain, oxidative phosphorylation and energy metabolism were up-regulated, while in human cell lines, MAP kinase-related activity was up-regulated. Inhibition of this pathway was able to partially attenuate the resulting cell death induced by mutant DFNA5 in human cell lines. In yeast, the association with mitochondria was demonstrated by up-regulation of several cytochrome c oxidase (COX) genes involved in the cellular oxidative stress production. Both models show a down-regulation of protein sorting- and folding-related mechanisms suggesting an additional role for the endoplasmic reticulum (ER). The exact relationship between ER and mitochondria in DFNA5-induced cell death remains unknown at this moment, but these results suggest a potential link between the two.
Insights
Mutant DFNA5 gene expression triggers programmed cell death (PCD) through mitochondrial and MAP kinase pathways. This research sheds light on PCD mechanisms linked to hearing loss and cancer.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Programmed cell death (PCD) is a regulated process crucial for development and disease.
- DFNA5 gene mutations are linked to autosomal dominant hearing loss (HL) and cancer.
- Exon 8 skipping in DFNA5 causes HL and induces cell death.
Purpose of the Study:
- Investigate the molecular mechanisms of PCD induced by mutant DFNA5.
- Identify cellular pathways affected by DFNA5 mutations.
- Explore the roles of mitochondria and endoplasmic reticulum in DFNA5-induced cell death.
Main Methods:
- Microarray analysis in human cell lines and Saccharomyces cerevisiae.
- Comparison of gene expression profiles between wild-type and mutant DFNA5.
- Functional assays to assess cell death and pathway inhibition.
Main Results:
- Mutant DFNA5 up-regulates mitochondrial pathways (ATP-coupled electron transport, oxidative phosphorylation) in yeast.
- MAP kinase pathway is up-regulated in human cells, and its inhibition partially reduces cell death.
- Down-regulation of protein sorting and folding suggests endoplasmic reticulum involvement.
Conclusions:
- Mutant DFNA5 induces PCD via distinct pathways in yeast and human cells.
- Mitochondria and MAP kinase pathways are key players in DFNA5-induced cell death.
- Endoplasmic reticulum may also contribute to this process, with potential interplay between ER and mitochondria.
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