Literature DB >> 21651999

Cell type-specific responses of peripheral blood mononuclear cells to silver nanoparticles.

C Greulich1, J Diendorf, J Gessmann, T Simon, T Habijan, G Eggeler, T A Schildhauer, M Epple, M Köller.   

Abstract

Silver nanoparticles (Ag-NP) are increasingly used in biomedical applications because of their remarkable antimicrobial activity. In biomedicine, Ag-NP are coated onto or embedded in wound dressings, surgical instruments and bone substitute biomaterials, such as silver-containing calcium phosphate cements. Free Ag-NP and silver ions are released from these coatings or after the degradation of a biomaterial, and may come into close contact with blood cells. Despite the widespread use of Ag-NP as an antimicrobial agent, there is a serious lack of information on the biological effects of Ag-NP on human blood cells. In this study, the uptake of Ag-NP by peripheral monocytes and lymphocytes (T-cells) was analyzed, and the influence of nanosilver on cell biological functions (proliferation, the expression of adhesion molecules, cytokine release and the generation of reactive oxygen species) was studied. After cell culture in the presence of monodispersed Ag-NP (5-30μgml(-1) silver concentration), agglomerates of nanoparticles were detected within monocytes (CD14+) but not in T-cells (CD3+) by light microscopy, flow cytometry and combined focused ion beam/scanning electron microscopy. The uptake rate of nanoparticles was concentration dependent, and the silver agglomerates were typically found in the cytoplasm. Furthermore, a concentration-dependent activation (e.g. an increased expression of adhesion molecule CD54) of monocytes at Ag-NP concentrations of 10-15μgml(-1) was observed, and cytotoxicity of Ag-NP-treated monocytes was observed at Ag-NP levels of 25μgml(-1) and higher. However, no modulation of T-cell proliferation was observed in the presence of Ag-NP. Taken together, our results provide the first evidence for a cell-type-specific uptake of Ag-NP by peripheral blood mononuclear cells (PBMC) and the resultant cellular responses after exposure.
Copyright © 2011 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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Year:  2011        PMID: 21651999     DOI: 10.1016/j.actbio.2011.05.030

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  30 in total

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4.  Silver nanoparticles: correlating nanoparticle size and cellular uptake with genotoxicity.

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5.  The effect of different concentrations of gold nanoparticles on growth performance, toxicopathological and immunological parameters of broiler chickens.

Authors:  Eman I Hassanen; Eman A Morsy; Ahmed M Hussien; Marwa A Ibrahim; Khaled Y Farroh
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Authors:  Prince Allawadhi; Vishakha Singh; Amit Khurana; Isha Khurana; Sachin Allwadhi; Pawan Kumar; Anil Kumar Banothu; Sunitha Thalugula; Percy Jasmine Barani; Ramavath Redya Naik; Kala Kumar Bharani
Journal:  Sens Int       Date:  2021-06-02

Review 7.  Nanoparticles and their effects on differentiation of mesenchymal stem cells.

Authors:  Xing Yang; Yuanyuan Li; Xujie Liu; Wei He; Qianli Huang; Qingling Feng
Journal:  Biomater Transl       Date:  2020-12-28

8.  Cytotoxic, anti-proliferative and apoptotic effects of silver nitrate against H-ras transformed 5RP7.

Authors:  Ayse Kaplan; Gulsen Akalin Ciftci; Hatice Mehtap Kutlu
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Review 9.  Alternative antimicrobial approach: nano-antimicrobial materials.

Authors:  Nurit Beyth; Yael Houri-Haddad; Avi Domb; Wahid Khan; Ronen Hazan
Journal:  Evid Based Complement Alternat Med       Date:  2015-03-16       Impact factor: 2.629

Review 10.  Nanoparticles and their potential for application in bone.

Authors:  Andrea Tautzenberger; Anna Kovtun; Anita Ignatius
Journal:  Int J Nanomedicine       Date:  2012-08-17
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