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Cullin-5 Adaptor SPSB1 Controls NF-κB Activation Downstream of Multiple Signaling Pathways
Iliana Georgana1, Carlos Maluquer de Motes1
1Department of Microbial Sciences, University of Surrey, Guildford, United Kingdom.
Abstract:
The initiation of innate immune responses against pathogens relies on the activation of pattern-recognition receptors (PRRs) and corresponding intracellular signaling cascades. To avoid inappropriate or excessive activation of PRRs, these responses are tightly controlled. Cullin-RING E3 ubiquitin ligases (CRLs) have emerged as critical regulators of many cellular functions including innate immune activation and inflammation. CRLs form multiprotein complexes in which a Cullin protein acts as a scaffold and recruits specific adaptor proteins, which in turn recognize specific substrate proteins for ubiquitylation, hence providing selectivity. CRLs are divided into 5 main groups, each of which uses a specific group of adaptor proteins. Here, we systematically depleted all predicted substrate adaptors for the CRL5 family (the so-called SOCS-box proteins) and assessed the impact on the activation of the inflammatory transcription factor NF-κB. Depletion of SPSB1 resulted in a significant increase in NF-κB activation, indicating the importance of SPSB1 as an NF-κB negative regulator. In agreement, overexpression of SPSB1 suppressed NF-κB activity in a potent, dose-dependent manner in response to various agonists. Inhibition by SPSB1 was specific to NF-κB, because other transcription factors related to innate immunity and interferon (IFN) responses such as IRF-3, AP-1, and STATs remained unaffected by SPSB1. SPSB1 suppressed NF-κB activation induced via multiple pathways including Toll-like receptors and RNA and DNA sensing adaptors, and required the presence of its SOCS-box domain. To provide mechanistic insight, we examined phosphorylation and degradation of the inhibitor of κB (IκBα) and p65 translocation into the nucleus. Both remained unaffected by SPSB1, indicating that SPSB1 exerts its inhibitory activity downstream, or at the level, of the NF-κB heterodimer. In agreement with this, SPSB1 was found to co-precipitate with p65 after over-expression and at endogenous levels. Additionally, A549 cells stably expressing SPSB1 presented lower cytokine levels including type I IFN in response to cytokine stimulation and virus infection. Taken together, our results reveal novel regulatory mechanisms in innate immune signaling and identify the prominent role of SPSB1 in limiting NF-κB activation. Our work thus provides insights into inflammation and inflammatory diseases and new opportunities for the therapeutic targeting of NF-κB transcriptional activity.
Insights
The study identifies SPSB1 as a key negative regulator of the inflammatory transcription factor NF-κB. Depleting SPSB1 boosts NF-κB activation, while its overexpression suppresses it, offering insights into inflammation and potential therapies.
Area of Science:
- Immunology
- Molecular Biology
- Cellular Signaling
Background:
- Innate immune responses are initiated by pattern-recognition receptors (PRRs) and tightly controlled to prevent excessive activation.
- Cullin-RING E3 ubiquitin ligases (CRLs) are crucial regulators of innate immunity and inflammation, utilizing adaptor proteins for substrate specificity.
Purpose of the Study:
- To systematically investigate the role of CRL5 family substrate adaptors (SOCS-box proteins) in regulating innate immune signaling.
- To determine the specific impact of these adaptors on the activation of the nuclear factor kappa B (NF-κB) transcription factor.
Main Methods:
- Systematic depletion of all predicted CRL5 SOCS-box proteins.
- Assessment of NF-κB activation using various agonists and signaling pathways (Toll-like receptors, RNA/DNA sensing).
- Analysis of inhibitor of κB (IκBα) phosphorylation/degradation, p65 nuclear translocation, and co-precipitation with p65.
- Evaluation of cytokine production (including type I interferon) in cells expressing SPSB1.
Main Results:
- Depletion of SPSB1 significantly increased NF-κB activation, identifying it as a negative regulator.
- Overexpression of SPSB1 potently suppressed NF-κB activity in a dose-dependent manner, specific to NF-κB and not other transcription factors like IRF-3, AP-1, or STATs.
- SPSB1 inhibits NF-κB downstream of IκBα degradation and p65 translocation, interacting with the p65 subunit.
- Cells expressing SPSB1 showed reduced cytokine and type I interferon levels upon stimulation or viral infection.
Conclusions:
- SPSB1 is a critical negative regulator of NF-κB activation, limiting innate immune signaling and inflammation.
- The findings reveal novel regulatory mechanisms in innate immunity and highlight SPSB1's role in controlling inflammatory responses.
- SPSB1 represents a potential therapeutic target for modulating NF-κB activity in inflammatory diseases.
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