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Published on: August 22, 2019
The stress-inducible transcription factor ATF4 accumulates at specific rRNA-processing nucleolar regions after
Valentina Galimberti1, Noa Kinor2, Yaron Shav-Tal2
1Department of Biology and Biotechnology, Laboratory of Biology and Neurobiology, University of Pavia, Pavia, Italy.
Abstract:
Functional protein homeostasis is essential for the maintenance of normal cellular physiology, cell growth, and cell survival. Proteasome inhibition in cancer cells can disturb protein homeostasis in such a way that synthetic proteasome inhibitors like bortezomib may selectively kill myeloma cells. Solid cancer cells appear to respond less to bortezomib which may in part be due to a rescue mechanism of the unfolded protein response/endoplasmic reticulum stress mechanism which leads to a temporary shutdown of protein biosynthesis at the translational level. Here we show that proteasome inhibition by bortezomib may also interfere with general protein biosynthesis already at the stage of nucleolar ribosome biogenesis. Ultrastructural analysis revealed not only that bortezomib induces conspicuous changes in cytoplasmic morphology but also pronounced morphological changes of the nucleolar ultrastructure, associated with an accumulation of the transcription factor ATF4 at nucleolar sites. Stress-induced intra-nucleolar ATF4 accumulation was observed in cancer cells in a dose and time dependent manner and ultrastructural studies revealed that ATF4 is preferentially localized inside the dense fibrillar and granular component of nucleoli. Furthermore, bortezomib affected not only the number of nucleoli, but also the volume and distribution of nucleolar components. The localization of ATF4 in the granular component of nucleoli together with its association with nascent RNA transcripts in cells undergoing proteotoxic cell stress could suggest a new function for ATF4 in cell stress management.
Insights
Proteasome inhibition by bortezomib disrupts cancer cell protein homeostasis by affecting nucleolar ribosome biogenesis. This study reveals a novel role for transcription factor ATF4 in managing proteotoxic stress within the nucleolus.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Protein homeostasis is crucial for cell function and survival.
- Proteasome inhibitors like bortezomib selectively kill myeloma cells by disrupting protein homeostasis.
- Solid cancer cells exhibit resistance to bortezomib, potentially due to unfolded protein response/endoplasmic reticulum stress mechanisms.
Purpose of the Study:
- To investigate the impact of bortezomib on protein biosynthesis beyond translational shutdown.
- To explore the effects of proteasome inhibition on nucleolar ribosome biogenesis.
- To elucidate the role of the transcription factor ATF4 in nucleolar stress responses.
Main Methods:
- Ultrastructural analysis of cancer cells treated with bortezomib.
- Assessment of nucleolar morphology and ATF4 localization.
- Dose- and time-dependent studies of ATF4 accumulation.
Main Results:
- Bortezomib induces significant changes in cytoplasmic and nucleolar ultrastructure.
- Accumulation of ATF4 at nucleolar sites in a dose- and time-dependent manner.
- Bortezomib affects nucleolar number, volume, and component distribution.
Conclusions:
- Proteasome inhibition by bortezomib interferes with ribosome biogenesis, impacting protein synthesis at the nucleolar level.
- ATF4 accumulates within nucleoli during proteotoxic stress, suggesting a role in nucleolar stress management.
- The findings propose a novel function for ATF4 in cellular response to proteasome inhibition and stress.
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