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Published on: March 7, 2019
Functional genomics identifies negative regulatory nodes controlling phagocyte oxidative burst
Daniel B Graham1,2, Christine E Becker3, Aivi Doan1
1Broad Institute of MIT and Harvard, Cambridge, Massachusetts 02142, USA.
Abstract:
The phagocyte oxidative burst, mediated by Nox2 NADPH oxidase-derived reactive oxygen species, confers host defense against a broad spectrum of bacterial and fungal pathogens. Loss-of-function mutations that impair function of the Nox2 complex result in a life-threatening immunodeficiency, and genetic variants of Nox2 subunits have been implicated in pathogenesis of inflammatory bowel disease (IBD). Thus, alterations in the oxidative burst can profoundly impact host defense, yet little is known about regulatory mechanisms that fine-tune this response. Here we report the discovery of regulatory nodes controlling oxidative burst by functional screening of genes within loci linked to human inflammatory disease. Implementing a multi-omics approach, we define transcriptional, metabolic and ubiquitin-cycling nodes controlled by Rbpj, Pfkl and Rnf145, respectively. Furthermore, we implicate Rnf145 in proteostasis of the Nox2 complex by endoplasmic reticulum-associated degradation. Consequently, ablation of Rnf145 in murine macrophages enhances bacterial clearance, and rescues the oxidative burst defects associated with Ncf4 haploinsufficiency.
Insights
Researchers discovered new regulatory pathways controlling the phagocyte oxidative burst, crucial for host defense. Rnf145 enhances bacterial clearance and rescues immune defects by managing the Nox2 complex.
Area of Science:
- Immunology
- Molecular Biology
- Genetics
Background:
- The phagocyte oxidative burst, driven by Nox2 NADPH oxidase, is vital for combating bacterial and fungal infections.
- Impaired Nox2 complex function leads to severe immunodeficiency, and its genetic variants are linked to inflammatory bowel disease (IBD).
- Regulatory mechanisms fine-tuning the oxidative burst remain largely unknown, despite its critical role in host defense.
Purpose of the Study:
- To identify novel regulatory nodes controlling the phagocyte oxidative burst.
- To investigate genes within loci associated with human inflammatory diseases as potential regulators.
- To elucidate the molecular mechanisms underlying oxidative burst regulation.
Main Methods:
- Functional screening of genes linked to human inflammatory disease.
- Multi-omics approach including transcriptional, metabolic, and ubiquitin-cycling analyses.
- Investigated the role of Rnf145 in Nox2 complex proteostasis via ER-associated degradation.
Main Results:
- Discovered Rbpj, Pfkl, and Rnf145 as key regulatory nodes controlling transcriptional, metabolic, and ubiquitin-cycling aspects of the oxidative burst, respectively.
- Demonstrated Rnf145's role in maintaining Nox2 complex proteostasis through endoplasmic reticulum-associated degradation.
- Showed that Rnf145 ablation in macrophages enhances bacterial clearance and corrects oxidative burst defects in Ncf4 haploinsufficient models.
Conclusions:
- Rbpj, Pfkl, and Rnf145 represent critical regulatory nodes for the oxidative burst.
- Rnf145 plays a significant role in Nox2 complex quality control and immune function.
- Targeting these regulators may offer therapeutic strategies for immunodeficiency and inflammatory diseases.
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