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Proteomic Analysis of Human Macrophage Polarization Under a Low Oxygen Environment
Published on: January 7, 2019
Global protein phosphorylation dynamics during deoxynivalenol-induced ribotoxic stress response in the macrophage
Xiao Pan1, Douglas A Whitten, Ming Wu
1Department of Biochemistry and Molecular Biology, Michigan State University, East Lansing, MI 48824, USA.
Abstract:
Deoxynivalenol (DON), a trichothecene mycotoxin produced by Fusarium that commonly contaminates food, is capable of activating mononuclear phagocytes of the innate immune system via a process termed the ribotoxic stress response (RSR). To encapture global signaling events mediating RSR, we quantified the early temporal (≤30min) phosphoproteome changes that occurred in RAW 264.7 murine macrophage during exposure to a toxicologically relevant concentration of DON (250ng/mL). Large-scale phosphoproteomic analysis employing stable isotope labeling of amino acids in cell culture (SILAC) in conjunction with titanium dioxide chromatography revealed that DON significantly upregulated or downregulated phosphorylation of 188 proteins at both known and yet-to-be functionally characterized phosphosites. DON-induced RSR is extremely complex and goes far beyond its prior known capacity to inhibit translation and activate MAPKs. Transcriptional regulation was the main target during early DON-induced RSR, covering over 20% of the altered phosphoproteins as indicated by Gene Ontology annotation and including transcription factors/cofactors and epigenetic modulators. Other biological processes impacted included cell cycle, RNA processing, translation, ribosome biogenesis, monocyte differentiation and cytoskeleton organization. Some of these processes could be mediated by signaling networks involving MAPK-, NFκB-, AKT- and AMPK-linked pathways. Fuzzy c-means clustering revealed that DON-regulated phosphosites could be discretely classified with regard to the kinetics of phosphorylation/dephosphorylation. The cellular response networks identified provide a template for further exploration of the mechanisms of trichothecenemycotoxins and other ribotoxins, and ultimately, could contribute to improved mechanism-based human health risk assessment.
Insights
Deoxynivalenol (DON) triggers a complex ribotoxic stress response (RSR) in immune cells, altering protein phosphorylation. This study reveals DON primarily impacts transcriptional regulation and other cellular processes, offering insights into mycotoxin risk assessment.
Area of Science:
- Immunology
- Toxicology
- Proteomics
Background:
- Deoxynivalenol (DON) is a common food contaminant and trichothecene mycotoxin.
- DON activates mononuclear phagocytes via the ribotoxic stress response (RSR).
- Understanding early signaling events in RSR is crucial for risk assessment.
Purpose of the Study:
- To comprehensively map early phosphoproteome changes in macrophages exposed to DON.
- To elucidate the global signaling network mediating DON-induced RSR.
- To identify key biological processes and pathways affected by DON.
Main Methods:
- RAW 264.7 murine macrophages were exposed to a toxicologically relevant DON concentration (250 ng/mL).
- Phosphoproteome analysis was performed using stable isotope labeling of amino acids in cell culture (SILAC) and titanium dioxide chromatography.
- Proteomic data was analyzed for temporal changes in protein phosphorylation within 30 minutes.
Main Results:
- DON significantly altered the phosphorylation of 188 proteins, affecting both known and novel phosphosites.
- Transcriptional regulation emerged as a primary target, impacting transcription factors and epigenetic modulators (over 20% of altered phosphoproteins).
- Other affected processes included cell cycle, RNA processing, translation, ribosome biogenesis, monocyte differentiation, and cytoskeleton organization, potentially involving MAPK, NFκB, AKT, and AMPK pathways.
Conclusions:
- DON-induced RSR is more complex than previously understood, extending beyond translation inhibition and MAPK activation.
- Early DON exposure profoundly impacts transcriptional regulation and cellular networks.
- The identified cellular response networks provide a foundation for further research on trichothecene mycotoxins and ribotoxins, aiding human health risk assessment.
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