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Application of Short-term Inhalation Studies to Assess the Inhalation Toxicity of Nanomaterials

Overview
Publisher Biomed Central
Specialty Toxicology
Date 2014 Apr 9
PMID 24708749
Citations 48
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Abstract

Background: A standard short-term inhalation study (STIS) was applied for hazard assessment of 13 metal oxide nanomaterials and micron-scale zinc oxide.

Methods: Rats were exposed to test material aerosols (ranging from 0.5 to 50 mg/m3) for five consecutive days with 14- or 21-day post-exposure observation. Bronchoalveolar lavage fluid (BALF) and histopathological sections of the entire respiratory tract were examined. Pulmonary deposition and clearance and test material translocation into extra-pulmonary organs were assessed.

Results: Inhaled nanomaterials were found in the lung, in alveolar macrophages, and in the draining lymph nodes. Polyacrylate-coated silica was also found in the spleen, and both zinc oxides elicited olfactory epithelium necrosis. None of the other nanomaterials was recorded in extra-pulmonary organs. Eight nanomaterials did not elicit pulmonary effects, and their no observed adverse effect concentrations (NOAECs) were at least 10 mg/m3. Five materials (coated nano-TiO2, both ZnO, both CeO2) evoked concentration-dependent transient pulmonary inflammation. Most effects were at least partially reversible during the post-exposure period.Based on the NOAECs that were derived from quantitative parameters, with BALF polymorphonuclear (PMN) neutrophil counts and total protein concentration being most sensitive, or from the severity of histopathological findings, the materials were ranked by increasing toxic potency into 3 grades: lower toxic potency: BaSO4; SiO2.acrylate (by local NOAEC); SiO2.PEG; SiO2.phosphate; SiO2.amino; nano-ZrO2; ZrO2.TODA; ZrO2.acrylate; medium toxic potency: SiO2.naked; higher toxic potency: coated nano-TiO2; nano-CeO2; Al-doped nano-CeO2; micron-scale ZnO; coated nano-ZnO (and SiO2.acrylate by systemic no observed effect concentration (NOEC)).

Conclusion: The STIS revealed the type of effects of 13 nanomaterials, and micron-scale ZnO, information on their toxic potency, and the location and reversibility of effects. Assessment of lung burden and material translocation provided preliminary biokinetic information. Based upon the study results, the STIS protocol was re-assessed and preliminary suggestions regarding the grouping of nanomaterials for safety assessment were spelled out.

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References
1.
Srinivas A, Rao P, Selvam G, Murthy P, Reddy P . Acute inhalation toxicity of cerium oxide nanoparticles in rats. Toxicol Lett. 2011; 205(2):105-15. DOI: 10.1016/j.toxlet.2011.05.1027. View

2.
Scott J, Weir M, Wilson S, Xuan J, Chambers A, McCormack D . Osteopontin inhibits inducible nitric oxide synthase activity in rat vascular tissue. Am J Physiol. 1998; 275(6):H2258-65. DOI: 10.1152/ajpheart.1998.275.6.H2258. View

3.
Oomen A, Bos P, Fernandes T, Hund-Rinke K, Boraschi D, Byrne H . Concern-driven integrated approaches to nanomaterial testing and assessment--report of the NanoSafety Cluster Working Group 10. Nanotoxicology. 2013; 8(3):334-48. PMC: 4002633. DOI: 10.3109/17435390.2013.802387. View

4.
Skogstrand K, Thorsen P, Norgaard-Pedersen B, Schendel D, Sorensen L, Hougaard D . Simultaneous measurement of 25 inflammatory markers and neurotrophins in neonatal dried blood spots by immunoassay with xMAP technology. Clin Chem. 2005; 51(10):1854-66. DOI: 10.1373/clinchem.2005.052241. View

5.
Bermudez E, Mangum J, Wong B, Asgharian B, Hext P, Warheit D . Pulmonary responses of mice, rats, and hamsters to subchronic inhalation of ultrafine titanium dioxide particles. Toxicol Sci. 2003; 77(2):347-57. DOI: 10.1093/toxsci/kfh019. View