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Published on: January 12, 2020
Rad GTPase inhibits the NFκB pathway through interacting with RelA/p65 to impede its DNA binding and target gene
Bo-Yuan Hsiao1, Tsun-Kai Chang1, I-Ting Wu1
1Institute of Biochemistry and Molecular Biology, National Yang-Ming University, No. 155, Section 2, Li-Nong Street, Taipei 11221, Taiwan.
Abstract:
Rad is a Ras-related small GTPase shown to inhibit cancer cell migration, and its expression is frequently lost in lung cancer cells. Here we provide evidence that Rad can negatively regulate the NFκB pathway. Overexpressing Rad in cells lowered both the basal and TNFα-stimulated transcriptional activity of NFκB. Compared with control cells, Rad-overexpressing cells displayed more cytoplasmic distribution of the NFκB subunit RelA/p65, while Rad-knockdown cells had higher levels of nuclear RelA/p65. Depleting Rad did not affect the kinetics of TNFα-induced IκB degradation, suggesting that Rad-mediated regulation of NFκB was through an IκB-independent mechanism. Expression of a nucleus-localized mutant Rad was sufficient to inhibit the NFκB transcriptional activity, whereas expressing the scaffolding protein 14-3-3γ to retain Rad in the cytoplasm alleviated the suppressive effect of Rad on NFκB. GST pull-down assays showed that Rad could directly bind to RelA/p65, and co-immunoprecipitation demonstrated that the Rad-p65 interaction primarily occurred in the nucleus. Adding Rad-containing nuclear extracts or purified GST-Rad in the electrophoretic mobility shift assays dose-dependently decreased the binding of RelA/p65 to an oligonucleotide probe containing the NFκB response element, suggesting that Rad may directly impede the interaction between RelA/p65 and DNA. Rad depletion altered the expression of an array of NFκB target genes, including upregulating MMP9. Knockdown of Rad expression in cells increased both basal and TNFα-stimulated MMP9 activities and cell invasion. Collectively, our results disclose a novel role of nuclear Rad in inhibiting the NFκB pathway function.
Insights
Rad protein inhibits cancer cell migration by suppressing the nuclear factor kappa B (NFκB) pathway. Nuclear Rad directly blocks NFκB
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Rad is a Ras-related small GTPase that inhibits cancer cell migration.
- Rad expression is frequently lost in lung cancer cells.
- The NFκB pathway is a key regulator of inflammation and cancer progression.
Purpose of the Study:
- To investigate the role of Rad in regulating the NFκB pathway.
- To elucidate the mechanism by which Rad affects NFκB activity.
- To determine the impact of Rad on cancer cell migration and invasion.
Main Methods:
- Overexpression and knockdown of Rad in lung cancer cells.
- Analysis of NFκB transcriptional activity and RelA/p65 localization.
- Investigation of IκB degradation kinetics.
- GST pull-down and co-immunoprecipitation assays to study protein interactions.
- Electrophoretic mobility shift assays (EMSA) to assess DNA binding.
- Analysis of NFκB target gene expression, including MMP9.
Main Results:
- Overexpression of Rad reduced both basal and TNFα-stimulated NFκB transcriptional activity.
- Rad localized to the nucleus and inhibited RelA/p65 nuclear translocation.
- Rad directly binds to RelA/p65 in the nucleus and impedes its DNA binding.
- Rad depletion increased MMP9 expression and activity, leading to enhanced cell invasion.
- Rad regulates NFκB via an IκB-independent mechanism.
Conclusions:
- Nuclear Rad acts as a novel inhibitor of the NFκB pathway.
- Rad suppresses NFκB activity by directly interfering with RelA/p65 DNA binding.
- Rad loss contributes to increased cancer cell migration and invasion through NFκB activation.
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