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Published on: January 4, 2016
Inhibition of PP2A activity by H2O2 during mitosis disrupts nuclear envelope reassembly and alters nuclear shape
Ju-Hyun Ahn1,2,3, Min-Guk Cho1,2,3, Seonghyang Sohn3,4
1Department of Biochemistry and Molecular Biology, Ajou University School of Medicine, Suwon, 443-721, South Korea.
Abstract:
Many types of cancer cells exhibit abnormal nuclear shapes induced by various molecular changes. However, whether reactive oxygen species (ROS) induce nuclear deformation has not been fully addressed. Here, we show that hydrogen peroxide (H2O2) treatment induced concentration-dependent alterations in nuclear shape that were abolished by pretreatment with the antioxidant N-acetyl-L-cysteine or by catalase overexpression. Interestingly, treatment with H2O2 induced nuclear shape alterations significantly more frequently in mitotic cells than in asynchronous cells, suggesting that H2O2 mainly affects nuclear envelope disassembly and/or reassembly processes. Because protein phosphatase 2 A (PP2A) activity is reported to be involved in nuclear envelope reassembly during mitosis, we investigated the possible involvement of PP2A. Indeed, H2O2 reduced the activity of PP2A, an effect that was mimicked by the PP1 and PP2A inhibitor okadaic acid. Moreover, overexpression of PP2A but not PP1 or PP4 partially rescued H2O2-induced alterations in nuclear shape, indicating that the decrease in PP2A activity induced by H2O2 is specifically involved in the observed nuclear shape alterations. We further show that treatment of mitotic cells with H2O2 induced the mislocalization of BAF (barrier-to-autointegration factor), a substrate of PP2A, during telophase. This effect was associated with Lamin A/C mislocalization and was rescued by PP2A overexpression. Collectively, our findings suggest that H2O2 preferentially affects mitotic cells through PP2A inhibition, which induces the subsequent mislocalization of BAF and Lamin A/C during nuclear envelope reassembly, leading to the formation of an abnormal nuclear shape.
Insights
Hydrogen peroxide (H2O2) causes abnormal nuclear shapes, particularly in mitotic cells, by inhibiting protein phosphatase 2A (PP2A). This leads to mislocalization of key proteins during nuclear envelope reassembly.
Area of Science:
- Cell biology
- Molecular oncology
Background:
- Cancer cells often display abnormal nuclear morphology.
- The role of reactive oxygen species (ROS), such as hydrogen peroxide (H2O2), in inducing nuclear shape changes is not fully understood.
Purpose of the Study:
- To investigate whether H2O2 induces nuclear deformation.
- To elucidate the molecular mechanisms underlying H2O2-induced nuclear shape alterations, focusing on its effects during mitosis.
Main Methods:
- Treatment of cells with varying concentrations of H2O2.
- Use of antioxidants (N-acetyl-L-cysteine) and enzyme modulators (catalase, okadaic acid).
- Overexpression of specific protein phosphatases (PP2A, PP1, PP4) and analysis of protein localization (BAF, Lamin A/C).
Main Results:
- H2O2 induced concentration-dependent nuclear shape alterations, abolished by antioxidants.
- Mitotic cells were more susceptible to H2O2-induced nuclear shape changes.
- H2O2 inhibited PP2A activity, which was linked to BAF and Lamin A/C mislocalization during nuclear envelope reassembly.
- Overexpression of PP2A partially rescued the observed nuclear shape defects.
Conclusions:
- H2O2 induces abnormal nuclear shapes primarily in mitotic cells by inhibiting PP2A activity.
- This inhibition disrupts nuclear envelope reassembly through mislocalization of BAF and Lamin A/C.
- ROS-induced nuclear morphology changes may represent a novel mechanism in cancer progression.
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