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Ochratoxin A: apoptosis and aberrant exit from mitosis due to perturbation of microtubule dynamics?
Eva Rached1, Erika Pfeiffer, Wolfgang Dekant
1Department of Toxicology, University of Würzburg, Versbacher Strasse 9, 97078 Würzburg, Germany.
Abstract:
Ochratoxin A (OTA) is a potent nephrotoxin and causes high incidences of renal tumors in rodents. The molecular events leading to tumor formation by OTA are not well defined. Early pathological changes observed in kidneys of rats treated with OTA in vivo include frequent mitotic and abnormally enlarged cells, detachment of tubule cells, and apoptosis within the S3 segment of the proximal tubule, suggesting that OTA may interfere with molecules involved in the regulation of cell division and apoptosis. In this study, treatment of immortalized human kidney epithelial (IHKE) cells with OTA (0-50 microM) resulted in a time- and dose-dependent increase in apoptosis and activation of c-Jun N-terminal kinase. At the same time, OTA blocked metaphase/anaphase transition and led to the formation of aberrant mitotic figures and giant cells with abnormally enlarged and/or multiple nuclei, sometimes still connected by chromatin bridges. Immunostaining of the mitotic apparatus using an alpha-tubulin antibody revealed defects in spindle formation. In addition, OTA inhibited microtubule assembly in a concentration-dependent manner in a cell-free, in vitro assay. Interestingly, treatment with OTA also resulted in activation of the transcription factor nuclear factor kappa B (NFkappaB), which has recently been shown to promote cell survival during mitotic cell cycle arrest. Based on these observations, we hypothesize that the mechanism by which OTA promotes tumor formation involves interference with microtubuli dynamics and mitotic spindle formation, resulting in apoptosis or-in the presence of survival signals such as stimulation of the NFkappaB pathway-premature exit from mitosis. Aberrant exit from mitosis resulting in blocked or asymmetric cell division may favor the occurrence of cytogenetic abnormalities and may therefore play a critical role in renal tumor formation by OTA.
Insights
Ochratoxin A (OTA) causes kidney tumors by disrupting cell division. It interferes with microtubule assembly and mitotic spindle formation, leading to cell death or abnormal cell division, promoting tumor growth.
Area of Science:
- Toxicology
- Molecular Biology
- Cell Biology
Background:
- Ochratoxin A (OTA) is a nephrotoxin linked to kidney tumors in rodents.
- The molecular mechanisms underlying OTA-induced renal tumorigenesis are not fully understood.
- Early observations suggest OTA impacts cell division and apoptosis regulators in kidney tubules.
Purpose of the Study:
- To investigate the molecular mechanisms by which Ochratoxin A (OTA) induces kidney epithelial cell damage and promotes tumor formation.
- To elucidate OTA's effects on cell cycle regulation, apoptosis, and microtubule dynamics in human kidney cells.
Main Methods:
- Treatment of immortalized human kidney epithelial (IHKE) cells with varying concentrations of OTA.
- Assays for apoptosis, c-Jun N-terminal kinase activation, and nuclear factor kappa B (NFkappaB) activation.
- Microscopic analysis of mitotic figures and immunostaining for alpha-tubulin to assess spindle formation.
- In vitro microtubule assembly assays.
Main Results:
- OTA induced apoptosis and activated c-Jun N-terminal kinase in IHKE cells in a dose- and time-dependent manner.
- OTA disrupted mitosis, causing metaphase/anaphase transition block, aberrant mitotic figures, and giant cell formation.
- Defects in spindle formation and inhibition of microtubule assembly were observed.
- OTA activated NFkappaB, a survival pathway during mitotic arrest.
Conclusions:
- OTA promotes renal tumor formation by interfering with microtubule dynamics and mitotic spindle formation.
- This interference leads to apoptosis or aberrant cell division, potentially causing cytogenetic abnormalities and driving tumorigenesis.
- The activation of NFkappaB may contribute to cell survival during mitotic arrest, favoring tumor development.
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