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Published on: June 23, 2013
Nanoparticles with intermediate hydrophobicity polarize macrophages to plaque-specific Mox phenotype via Nrf2 and
Shumei Zhai1, Xianzhi Zhang2, Mingdi Jiang2
1Key Laboratory of Colloid and Interface Chemistry of the Ministry of Education, School of Chemistry and Chemical Engineering, Shandong University, Jinan, Shandong 250100, China; Department of Chemistry, University of Massachusetts Amherst, Amherst, MA 01003, United States.
Abstract:
Mox macrophages were identified recently and are closely associated with atherosclerosis. Considering the potential health risks and the impact on macrophage modulation, this study investigated the Mox polarization of macrophages induced by nanoparticles (NPs) with tunable hydrophobicity. One nanoparticle (C4NP) with intermediate hydrophobicity efficiently upregulated the mRNA expression of Mox-related genes including HO-1, Srxn1, Txnrd1, Gsr, Vegf and Cox-2 through increased accumulation of Nrf2 at a nontoxic concentration in both resting and LPS-challenged macrophages. Additionally, C4NP impaired phagocytic capacity by 20% and significantly increased the secretion of cytokines, including TNFα, IL-6 and IL-10. Mechanistic studies indicated that intracellular reactive oxygen species (ROS) were elevated by 1.5-fold and 2.6-fold in resting and LPS-challenged macrophages respectively. Phosphorylated p62 was increased by 2.5-fold in resting macrophages and maintained a high level in LPS-challenged ones, both of which partially accounted for the significant accumulation of Nrf2 and HO-1. Notably, C4NP depolarized mitochondrial membrane potential by more than 50% and switched macrophages from oxidative phosphorylation-based aerobic metabolism to glycolysis for energy supply. Overall, this study reveals a novel molecular mechanism potentially involving ROS-Nrf2-p62 signaling in mediating macrophage Mox polarization, holding promise in ensuring safer and more efficient use of nanomaterials.
Insights
This study shows that a specific nanoparticle (C4NP) can induce Mox macrophage polarization by affecting the ROS-Nrf2-p62 pathway. This finding is crucial for understanding nanoparticle interactions with macrophages and ensuring safer nanomaterial use.
Area of Science:
- Nanomedicine
- Immunology
- Cell Biology
Background:
- Mox macrophages are newly identified immune cells linked to atherosclerosis.
- Nanoparticles (NPs) can modulate macrophage behavior, raising health concerns.
- Understanding NP-macrophage interactions is vital for safe nanomaterial application.
Purpose of the Study:
- To investigate how nanoparticles with varying hydrophobicity induce Mox macrophage polarization.
- To elucidate the molecular mechanisms underlying NP-induced Mox polarization.
- To assess the impact of C4NP on macrophage function and metabolism.
Main Methods:
- Utilized nanoparticles with tunable hydrophobicity, including C4NP.
- Assessed mRNA expression of Mox-related genes (HO-1, Srxn1, Txnrd1, Gsr, Vegf, Cox-2).
- Quantified Nrf2 accumulation, phagocytic capacity, cytokine secretion, ROS levels, and mitochondrial membrane potential.
Main Results:
- C4NP upregulated Mox-related genes via Nrf2 accumulation in macrophages.
- C4NP impaired phagocytosis and increased pro-inflammatory cytokine secretion (TNFα, IL-6, IL-10).
- C4NP elevated intracellular ROS, altered mitochondrial metabolism towards glycolysis, and involved p62 signaling.
Conclusions:
- A novel mechanism involving ROS-Nrf2-p62 signaling mediates C4NP-induced Mox macrophage polarization.
- This research provides insights into the molecular effects of NPs on macrophages.
- Findings contribute to the development of safer and more effective nanomaterials.
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