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In Situ Detection and Single Cell Quantification of Metal Oxide Nanoparticles Using Nuclear Microprobe Analysis
Published on: February 3, 2018
Proteomics unite traditional toxicological assessment methods to evaluate the toxicity of iron oxide nanoparticles
Junyuan Han1, Yongzhang Tian1, Minghan Wang1
1State Key Laboratory of Toxicology and Medical Countermeasures, Institute of Pharmacology and Toxicology, Beijing, China.
Abstract:
Iron oxide nanoparticles (IONPs) are the first generation of nanomaterials approved by the Food and Drug Administration for use as imaging agents and for the treatment of iron deficiency in chronic kidney disease. However, several IONPs-based imaging agents have been withdrawn because of toxic effects and the poor understanding of the underlying mechanisms. This study aimed to evaluate IONPs toxicity and to elucidate the underlying mechanism after intravenous administration in rats. Seven-week-old rats were intravenously administered IONPs at doses of 0, 10, 30, and 90 mg/kg body weight for 14 consecutive days. Toxicity and molecular perturbations were evaluated using traditional toxicological assessment methods and proteomics approaches, respectively. The administration of 90 mg/kg IONPs induced mild toxic effects, including abnormal clinical signs, lower body weight gain, changes in serum biochemical and hematological parameters, and increased organ coefficients in the spleen, liver, heart, and kidneys. Toxicokinetics, tissue distribution, histopathological, and transmission electron microscopy analyses revealed that the spleen was the primary organ for IONPs elimination from the systemic circulation and that the macrophage lysosomes were the main organelles of IONPs accumulation after intravenous administration. We identified 197 upregulated and 75 downregulated proteins in the spleen following IONPs administration by proteomics. Mechanically, the AKT/mTOR/TFEB signaling pathway facilitated autophagy and lysosomal activation in splenic macrophages. This is the first study to elucidate the mechanism of IONPs toxicity by combining proteomics with traditional methods for toxicity assessment.
Insights
Iron oxide nanoparticles (IONPs) show mild toxicity in rats, primarily affecting the spleen. Proteomics revealed the AKT/mTOR/TFEB pathway drives autophagy and lysosomal activation in splenic macrophages, explaining IONP accumulation.
Area of Science:
- Nanomedicine
- Toxicology
- Proteomics
Background:
- Iron oxide nanoparticles (IONPs) are FDA-approved but have faced withdrawal due to toxicity.
- Understanding IONP toxicity mechanisms is crucial for safe clinical applications.
Purpose of the Study:
- To evaluate the toxicity of IONPs after intravenous administration in rats.
- To elucidate the molecular mechanisms underlying IONP toxicity using proteomics.
Main Methods:
- Rats received daily IONP doses (0-90 mg/kg) for 14 days.
- Traditional toxicological assessments (clinical signs, bloodwork, organ weights) were performed.
- Proteomics identified protein changes in the spleen; mechanistic studies explored signaling pathways.
Main Results:
- High-dose IONPs (90 mg/kg) caused mild toxicity, affecting body weight, serum parameters, and organ coefficients (spleen, liver, heart, kidneys).
- The spleen was identified as the primary elimination organ, with IONPs accumulating in splenic macrophage lysosomes.
- Proteomics revealed significant protein alterations in the spleen, linked to the AKT/mTOR/TFEB pathway, autophagy, and lysosomal activity.
Conclusions:
- IONPs exhibit mild toxicity, with the spleen being a key organ for accumulation and elimination.
- The AKT/mTOR/TFEB signaling pathway plays a critical role in IONP-induced autophagy and lysosomal responses in macrophages.
- This study provides novel mechanistic insights into IONP toxicity by integrating proteomics and traditional toxicology.
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