Literature DB >> 18024722

Alteration of deposition pattern and pulmonary response as a result of improved dispersion of aspirated single-walled carbon nanotubes in a mouse model.

R R Mercer1, J Scabilloni, L Wang, E Kisin, A R Murray, D Schwegler-Berry, A A Shvedova, V Castranova.   

Abstract

Nanoparticles have a fundamental dimension of <100 nm. However, on suspension in media, agglomerates of nanoparticles are the more common structure. This is particularly evident in prior intratracheal instillation or aspiration studies of single-walled carbon nanotubes (SWCNT), in which granulomatous lesions encased by epithelioid macrophages were produced by large agglomerates. In this study, we tested the hypothesis of whether exposure to more dispersed SWCNT structures would alter pulmonary distribution and response. A dispersed preparation of single-walled carbon nanotubes (DSWCNT) with a mean diameter of 0.69 microm was given by pharyngeal aspiration to C57BL/6 mice. Electron microscopy demonstrated a highly dispersed, interstitial distribution of DSWCNT deposits by 1 day postexposure. Deposits were generally <1 microm. Macrophage phagocytosis of DSWCNT was rarely observed at any time point. Lung responses were studied by lavage and morphometry at 1 h, 1 day, 7 day, and 1 mo after a single DSWCNT exposure of 10 microg/mouse. Lung sections and lavage cells demonstrated an early, transient neutrophilic and inflammatory phase that rapidly resolved and was similar to that observed with large agglomerates. No granulomatous lesions or epithelioid macrophages were detected. Morphometric measurement of Sirius red staining was used to assess the connective tissue response. The average thickness of connective tissue in alveolar regions was 0.10 +/- 0.02, 0.09 +/- 0.02, 0.10 +/- 0.01, 0.48 +/- 0.04, and 0.88 +/- 0.19 microm for PBS and 1-h, 1-day, 7-day, and 1-mo postexposure groups, respectively. The results demonstrate that dispersed SWCNT are rapidly incorporated into the alveolar interstitium and that they produce an increase in collagen deposition.

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Year:  2007        PMID: 18024722     DOI: 10.1152/ajplung.00186.2007

Source DB:  PubMed          Journal:  Am J Physiol Lung Cell Mol Physiol        ISSN: 1040-0605            Impact factor:   5.464


  95 in total

1.  Citrullination of proteins: a common post-translational modification pathway induced by different nanoparticles in vitro and in vivo.

Authors:  Bashir M Mohamed; Navin K Verma; Anthony M Davies; Aoife McGowan; Kieran Crosbie-Staunton; Adriele Prina-Mello; Dermot Kelleher; Catherine H Botting; Corey P Causey; Paul R Thompson; Ger Jm Pruijn; Elena R Kisin; Alexey V Tkach; Anna A Shvedova; Yuri Volkov
Journal:  Nanomedicine (Lond)       Date:  2012-05-25       Impact factor: 5.307

Review 2.  Nanoparticles as a potential cause of pleural and interstitial lung disease.

Authors:  James C Bonner
Journal:  Proc Am Thorac Soc       Date:  2010-05

Review 3.  Pulmonary applications and toxicity of engineered nanoparticles.

Authors:  Jeffrey W Card; Darryl C Zeldin; James C Bonner; Earle R Nestmann
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2008-07-18       Impact factor: 5.464

4.  Long-term effects of carbon containing engineered nanomaterials and asbestos in the lung: one year postexposure comparisons.

Authors:  Anna A Shvedova; Naveena Yanamala; Elena R Kisin; Alexey V Tkach; Ashley R Murray; Ann Hubbs; Madalina M Chirila; Phouthone Keohavong; Lyudmila P Sycheva; Valerian E Kagan; Vincent Castranova
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2013-11-08       Impact factor: 5.464

Review 5.  The asbestos-carbon nanotube analogy: An update.

Authors:  Agnes B Kane; Robert H Hurt; Huajian Gao
Journal:  Toxicol Appl Pharmacol       Date:  2018-06-28       Impact factor: 4.219

Review 6.  Nanotechnology: toxicologic pathology.

Authors:  Ann F Hubbs; Linda M Sargent; Dale W Porter; Tina M Sager; Bean T Chen; David G Frazer; Vincent Castranova; Krishnan Sriram; Timothy R Nurkiewicz; Steven H Reynolds; Lori A Battelli; Diane Schwegler-Berry; Walter McKinney; Kara L Fluharty; Robert R Mercer
Journal:  Toxicol Pathol       Date:  2013-02-06       Impact factor: 1.902

Review 7.  Nanoparticles, lung injury, and the role of oxidant stress.

Authors:  Amy K Madl; Laurel E Plummer; Christopher Carosino; Kent E Pinkerton
Journal:  Annu Rev Physiol       Date:  2013-11-06       Impact factor: 19.318

8.  Acute Nanoparticle Exposure to Vocal Folds: A Laboratory Study.

Authors:  Xinxin Liu; Tanaya Walimbe; William Pierre Schrock; Wei Zheng; M Preeti Sivasankar
Journal:  J Voice       Date:  2017-04-21       Impact factor: 2.009

9.  Acquisition of Cancer Stem Cell-like Properties in Human Small Airway Epithelial Cells after a Long-term Exposure to Carbon Nanomaterials.

Authors:  Chayanin Kiratipaiboon; Todd A Stueckle; Rajib Ghosh; Liying W Rojanasakul; Yi Charlie Chen; Cerasela Zoica Dinu; Yon Rojanasakul
Journal:  Environ Sci Nano       Date:  2019-05-24

10.  An in vivo and in vitro toxicological characterisation of realistic nanoscale CeO₂ inhalation exposures.

Authors:  Philip Demokritou; Samuel Gass; Georgios Pyrgiotakis; Joel M Cohen; William Goldsmith; Walt McKinney; David Frazer; Jane Ma; Diane Schwegler-Berry; Joseph Brain; Vincent Castranova
Journal:  Nanotoxicology       Date:  2012-11-08       Impact factor: 5.913

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