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Updated: Dec 2, 2025

Visualization of G3BP Stress Granules Dynamics in Live Primary Cells
Published on: May 21, 2014
Role of Chikungunya nsP3 in Regulating G3BP1 Activity, Stress Granule Formation and Drug Efficacy
Xue Lu1, Umber Alam1, Charlene Willis2
1Griffith Institute for Drug Discovery, Nathan, Australia; School of Environment and Sciences, Griffith University, Brisbane, Australia.
Background:
Ras-GTPase activating protein SH3-domain-binding proteins (G3BP) are a small family of RNA-binding proteins implicated in regulating gene expression. Changes in expression of G3BPs are correlated to several cancers including thyroid, colon, pancreatic and breast cancer. G3BPs are important regulators of stress granule (SG) formation and function. SG are ribonucleoprotein (RNP) particles that respond to cellular stresses to triage mRNA resulting in transcripts being selectively degraded, stored or translated resulting in a change of gene expression which confers a survival response to the cell. These changes in gene expression contribute to the development of drug resistance. Many RNA viruses, including Chikungunya (and potentially Coronavirus), dismantle SG so that the cell cannot respond to the viral infection. Non-structural protein 3 (nsP3), from the Chikungunya virus, has been shown to translocate G3BP away from SG. Interestingly in cancer cells, the formation of SG is correlated to drug-resistance and blocking SG formation has been shown to reestablish the efficacy of the anticancer drug bortezomib.
Methods:
Chikungunya nsP3 was transfected into breast cancer cell lines T47D and MCF7 to disrupt SG formation. Changes in the cytotoxicity of bortezomib were measured.
Results:
Bortezomib cytotoxicity in breast cancer cell lines changed with a 22 fold decrease in its IC50 for T47D and a 7 fold decrease for MCF7 cells.
Conclusions:
Chikungunya nsP3 disrupts SG formation. As a result, it increases the cytotoxicity of the FDA approved drug, bortezomib. In addition, the increased cytotoxicity appears to correlate to improved bortezomib selectivity when compared to control cell lines.
Insights
Chikungunya virus protein nsP3 disrupts stress granules (SG), enhancing the effectiveness of the cancer drug bortezomib in breast cancer cells. This finding offers new strategies for improving cancer therapy by targeting SG formation.
Area of Science:
- Molecular Biology
- Virology
- Oncology
Background:
- Ras-GTPase activating protein SH3-domain-binding proteins (G3BP) regulate gene expression and are implicated in various cancers.
- Stress granules (SG) are RNP particles involved in cellular stress response, mRNA triage, and gene expression changes that can lead to drug resistance.
- Viral proteins, such as Chikungunya virus nsP3, can disrupt SG formation, potentially impacting cellular responses to stress and infection.
Purpose of the Study:
- To investigate the effect of Chikungunya virus nsP3 on stress granule (SG) formation in breast cancer cells.
- To determine if disrupting SG formation influences the cytotoxicity and selectivity of the anticancer drug bortezomib.
Main Methods:
- Chikungunya virus nsP3 was introduced into T47D and MCF7 breast cancer cell lines.
- The impact of nsP3 expression on SG formation was assessed.
- Changes in the cytotoxicity of bortezomib were measured in the presence of nsP3.
Main Results:
- Chikungunya nsP3 effectively disrupted stress granule formation in T47D and MCF7 cells.
- Bortezomib's cytotoxicity significantly increased, with a 22-fold decrease in IC50 for T47D cells and a 7-fold decrease for MCF7 cells.
- The enhanced cytotoxicity of bortezomib correlated with improved selectivity compared to control cells.
Conclusions:
- Chikungunya nsP3 disrupts stress granule formation, leading to increased cytotoxicity of bortezomib in breast cancer cells.
- Targeting SG formation presents a potential strategy to re-sensitize cancer cells to existing therapies like bortezomib.
- The findings suggest a link between viral protein interactions with cellular stress responses and cancer drug efficacy.
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