Literature DB >> 22047207

Dispersal state of multiwalled carbon nanotubes elicits profibrogenic cellular responses that correlate with fibrogenesis biomarkers and fibrosis in the murine lung.

Xiang Wang1, Tian Xia, Susana Addo Ntim, Zhaoxia Ji, Sijie Lin, Huan Meng, Choong-Heui Chung, Saji George, Haiyuan Zhang, Meiying Wang, Ning Li, Yang Yang, Vincent Castranova, Somenath Mitra, James C Bonner, André E Nel.   

Abstract

We developed a dispersal method for multiwalled carbon nanotubes (MWCNTs) that allows quantitative assessment of dispersion on profibrogenic responses in tissue culture cells and in mouse lung. We demonstrate that the dispersal of as-prepared (AP), purified (PD), and carboxylated (COOH) MWCNTs by bovine serum albumin (BSA) and dipalmitoylphosphatidylcholine (DPPC) influences TGF-β1, PDGF-AA, and IL-1β production in vitro and in vivo. These biomarkers were chosen based on their synergy in promoting fibrogenesis and cellular communication in the epithelial-mesenchymal cell trophic unit in the lung. The effect of dispersal was most noticeable in AP- and PD-MWCNTs, which are more hydrophobic and unstable in aqueous buffers than hydrophilic COOH-MWCNTs. Well-dispersed AP- and PD-MWCNTs were readily taken up by BEAS-2B, THP-1 cells, and alveolar macrophages (AM) and induced more prominent TGF-β1 and IL-1β production in vitro and TGF-β1, IL-1β, and PDGF-AA production in vivo than nondispersed tubes. Moreover, there was good agreement between the profibrogenic responses in vitro and in vivo as well as the ability of dispersed tubes to generate granulomatous inflammation and fibrosis in airways. Tube dispersal also elicited more robust IL-1β production in THP-1 cells. While COOH-MWCNTs were poorly taken up in BEAS-2B and induced little TGF-β1 production, they were bioprocessed by AM and induced less prominent collagen deposition at sites of nongranulomatous inflammation in the alveolar region. Taken together, these results indicate that the dispersal state of MWCNTs affects profibrogenic cellular responses that correlate with the extent of pulmonary fibrosis and are of potential use to predict pulmonary toxicity.

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Year:  2011        PMID: 22047207      PMCID: PMC4136431          DOI: 10.1021/nn2033055

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  48 in total

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2.  Carbon Nanotubes in Biology and Medicine: In vitro and in vivo Detection, Imaging and Drug Delivery.

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Journal:  Nano Res       Date:  2009-02-01       Impact factor: 8.897

3.  Promises, facts and challenges for carbon nanotubes in imaging and therapeutics.

Authors:  K Kostarelos; A Bianco; M Prato
Journal:  Nat Nanotechnol       Date:  2009-09-27       Impact factor: 39.213

Review 4.  NLRP3 inflammasome activation: The convergence of multiple signalling pathways on ROS production?

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Journal:  Nat Rev Immunol       Date:  2010-02-19       Impact factor: 53.106

5.  Pulmonary toxicity of single-wall carbon nanotubes in mice 7 and 90 days after intratracheal instillation.

Authors:  Chiu-Wing Lam; John T James; Richard McCluskey; Robert L Hunter
Journal:  Toxicol Sci       Date:  2003-09-26       Impact factor: 4.849

Review 6.  Asbestos, carbon nanotubes and the pleural mesothelium: a review of the hypothesis regarding the role of long fibre retention in the parietal pleura, inflammation and mesothelioma.

Authors:  Ken Donaldson; Fiona A Murphy; Rodger Duffin; Craig A Poland
Journal:  Part Fibre Toxicol       Date:  2010-03-22       Impact factor: 9.400

7.  Mesenchymal cell survival in airway and interstitial pulmonary fibrosis.

Authors:  James C Bonner
Journal:  Fibrogenesis Tissue Repair       Date:  2010-08-25

8.  Cyclooxygenase-2 deficiency exacerbates bleomycin-induced lung dysfunction but not fibrosis.

Authors:  Jeffrey W Card; James W Voltz; Michelle A Carey; J Alyce Bradbury; Laura M Degraff; Fred B Lih; James C Bonner; Daniel L Morgan; Gordon P Flake; Darryl C Zeldin
Journal:  Am J Respir Cell Mol Biol       Date:  2007-05-11       Impact factor: 6.914

9.  Carbon nanotubes introduced into the abdominal cavity of mice show asbestos-like pathogenicity in a pilot study.

Authors:  Craig A Poland; Rodger Duffin; Ian Kinloch; Andrew Maynard; William A H Wallace; Anthony Seaton; Vicki Stone; Simon Brown; William Macnee; Ken Donaldson
Journal:  Nat Nanotechnol       Date:  2008-05-20       Impact factor: 39.213

10.  Stabilization of C60 nanoparticles by protein adsorption and its implications for toxicity studies.

Authors:  Shigeru Deguchi; Tomoko Yamazaki; Sada-Atsu Mukai; Ron Usami; Koki Horikoshi
Journal:  Chem Res Toxicol       Date:  2007-05-16       Impact factor: 3.739

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  76 in total

1.  A carbon nanotube toxicity paradigm driven by mast cells and the IL-₃₃/ST₂ axis.

Authors:  Pranita Katwa; Xiaojia Wang; Rakhee N Urankar; Ramakrishna Podila; Susana C Hilderbrand; Robert B Fick; Apparao M Rao; Pu Chun Ke; Christopher J Wingard; Jared M Brown
Journal:  Small       Date:  2012-07-06       Impact factor: 13.281

2.  High resolution and dynamic imaging of biopersistence and bioreactivity of extra and intracellular MWNTs exposed to microglial cells.

Authors:  Angela E Goode; Daniel A Gonzalez Carter; Michael Motskin; Ilse S Pienaar; Shu Chen; Sheng Hu; Pakatip Ruenraroengsak; Mary P Ryan; Milo S P Shaffer; David T Dexter; Alexandra E Porter
Journal:  Biomaterials       Date:  2015-08-08       Impact factor: 12.479

3.  Use of a pro-fibrogenic mechanism-based predictive toxicological approach for tiered testing and decision analysis of carbonaceous nanomaterials.

Authors:  Xiang Wang; Matthew C Duch; Nikhita Mansukhani; Zhaoxia Ji; Yu-Pei Liao; Meiying Wang; Haiyuan Zhang; Bingbing Sun; Chong Hyun Chang; Ruibin Li; Sijie Lin; Huan Meng; Tian Xia; Mark C Hersam; André E Nel
Journal:  ACS Nano       Date:  2015-02-18       Impact factor: 15.881

Review 4.  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

5.  Innate Immune Responses to Nanoparticle Exposure in the Lung.

Authors:  Elizabeth A Thompson; Brian C Sayers; Ellen E Glista-Baker; Kelly A Shipkowski; Alexia J Taylor; James C Bonner
Journal:  J Environ Immunol Toxicol       Date:  2014 Jul-Sep

6.  Nanomechanical mechanism for lipid bilayer damage induced by carbon nanotubes confined in intracellular vesicles.

Authors:  Wenpeng Zhu; Annette von dem Bussche; Xin Yi; Yang Qiu; Zhongying Wang; Paula Weston; Robert H Hurt; Agnes B Kane; Huajian Gao
Journal:  Proc Natl Acad Sci U S A       Date:  2016-10-17       Impact factor: 11.205

7.  IL-33 modulates chronic airway resistance changes induced by multi-walled carbon nanotubes.

Authors:  Xiaojia Wang; Jonathan H Shannahan; Jared M Brown
Journal:  Inhal Toxicol       Date:  2014-02-06       Impact factor: 2.724

Review 8.  Current approaches for safer design of engineered nanomaterials.

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Journal:  Ecotoxicol Environ Saf       Date:  2018-09-28       Impact factor: 6.291

9.  Multiwalled Carbon Nanotube Functionalization with High Molecular Weight Hyaluronan Significantly Reduces Pulmonary Injury.

Authors:  Salik Hussain; Zhaoxia Ji; Alexia J Taylor; Laura M DeGraff; Margaret George; Charles J Tucker; Chong Hyun Chang; Ruibin Li; James C Bonner; Stavros Garantziotis
Journal:  ACS Nano       Date:  2016-08-02       Impact factor: 15.881

Review 10.  A work group report on ultrafine particles (American Academy of Allergy, Asthma & Immunology): Why ambient ultrafine and engineered nanoparticles should receive special attention for possible adverse health outcomes in human subjects.

Authors:  Ning Li; Steve Georas; Neil Alexis; Patricia Fritz; Tian Xia; Marc A Williams; Elliott Horner; Andre Nel
Journal:  J Allergy Clin Immunol       Date:  2016-04-06       Impact factor: 10.793

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