Literature DB >> 21329568

Immunotoxicity of nanoparticles.

M Di Gioacchino1, C Petrarca, F Lazzarin, L Di Giampaolo, E Sabbioni, P Boscolo, R Mariani-Costantini, G Bernardini.   

Abstract

The interaction between NPs and immune system has been demonstrated, however, the data available are limited. Among all traits, i.s. hydrophilicity, lipophilicity, catalytic activity, composition, electronic structure, capacity to bind or coat surface species and solubility, the dimension, and consequently the surface area, seems to be the main factor that contribute to the interactions of NPs with biological tissues and immune system in particular. Certain NPs accumulate to regional lymph nodes, where they can be taken up and processed by dendritic cells, interact with self-proteins and, hence, modify their antigenicity and elicit altered immune responses and even autoimmunity. Other NPs may induce allergic sensitization, i.e. allergic contact dermatitis to Pd. In vitro studies demonstrated that NPs can modulate cytokine production toward Th1 (Pl, Pd, Ni, Co) or Th2 (Ti, mw and sw Carbon) production patterns. Some NPs have been linked to allergic sensitization, however, It is unlikely that NPs can act as a hapten inducing a specific IgE production, likely they can act as adjuvant and induce a specific pattern of cytokines, antibody and cells that favor allergic sensitization to environmental allergens. Furthermore, NPs demonstrated pro-inflammatory effects in the lung in experimental animal with increased expression on IL-1beta, MIP-1alpha, MCP-1, MIP-2, keratinocyte chemoattractant, TARC, GM-CSF, MIP-1alpha and activation of the stress-activated MAPKs p38 and JNKs. All considered, the available data suggest that through the elicitation of an oxidative stress mechanism, engineered NPs may contribute to pro-inflammatory disease processes in the lung, particularly allergy.

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Year:  2011        PMID: 21329568

Source DB:  PubMed          Journal:  Int J Immunopathol Pharmacol        ISSN: 0394-6320            Impact factor:   3.219


  22 in total

Review 1.  Immunotoxicological impact of occupational and environmental nanoparticles exposure: The influence of physical, chemical, and combined characteristics of the particles.

Authors:  Paola Pedata; Claudia Petrarca; Elpidio Maria Garzillo; Mario Di Gioacchino
Journal:  Int J Immunopathol Pharmacol       Date:  2015-12-18       Impact factor: 3.219

2.  Progress in Nanomedicine: Approved and Investigational Nanodrugs.

Authors:  C Lee Ventola
Journal:  P T       Date:  2017-12

3.  Molecular responses of mouse macrophages to copper and copper oxide nanoparticles inferred from proteomic analyses.

Authors:  Sarah Triboulet; Catherine Aude-Garcia; Marie Carrière; Hélène Diemer; Fabienne Proamer; Aurélie Habert; Mireille Chevallet; Véronique Collin-Faure; Jean-Marc Strub; Daniel Hanau; Alain Van Dorsselaer; Nathalie Herlin-Boime; Thierry Rabilloud
Journal:  Mol Cell Proteomics       Date:  2013-07-23       Impact factor: 5.911

Review 4.  Understanding the correlation between in vitro and in vivo immunotoxicity tests for nanomedicines.

Authors:  Marina A Dobrovolskaia; Scott E McNeil
Journal:  J Control Release       Date:  2013-06-03       Impact factor: 9.776

Review 5.  Nanoparticle Effects on Stress Response Pathways and Nanoparticle-Protein Interactions.

Authors:  Shana J Cameron; Jessica Sheng; Farah Hosseinian; William G Willmore
Journal:  Int J Mol Sci       Date:  2022-07-19       Impact factor: 6.208

6.  The Relevance of Physico-Chemical Properties and Protein Corona for Evaluation of Nanoparticles Immunotoxicity-In Vitro Correlation Analysis on THP-1 Macrophages.

Authors:  Mojca Pavlin; Jasna Lojk; Klemen Strojan; Iva Hafner-Bratkovič; Roman Jerala; Adrijana Leonardi; Igor Križaj; Nataša Drnovšek; Saša Novak; Peter Veranič; Vladimir Boštjan Bregar
Journal:  Int J Mol Sci       Date:  2022-05-31       Impact factor: 6.208

Review 7.  Current understanding of interactions between nanoparticles and the immune system.

Authors:  Marina A Dobrovolskaia; Michael Shurin; Anna A Shvedova
Journal:  Toxicol Appl Pharmacol       Date:  2015-12-29       Impact factor: 4.219

Review 8.  Pre-clinical immunotoxicity studies of nanotechnology-formulated drugs: Challenges, considerations and strategy.

Authors:  Marina A Dobrovolskaia
Journal:  J Control Release       Date:  2015-09-05       Impact factor: 9.776

9.  The cytotoxicity of polycationic iron oxide nanoparticles: common endpoint assays and alternative approaches for improved understanding of cellular response mechanism.

Authors:  Clare Hoskins; Alfred Cuschieri; Lijun Wang
Journal:  J Nanobiotechnology       Date:  2012-04-17       Impact factor: 10.435

10.  Genotoxicity and Gene Expression in the Rat Lung Tissue following Instillation and Inhalation of Different Variants of Amorphous Silica Nanomaterials (aSiO2 NM).

Authors:  Fátima Brandão; Carla Costa; Maria João Bessa; Elise Dumortier; Florence Debacq-Chainiaux; Roland Hubaux; Michel Salmon; Julie Laloy; Miruna S Stan; Anca Hermenean; Sami Gharbia; Anca Dinischiotu; Anne Bannuscher; Bryan Hellack; Andrea Haase; Sónia Fraga; João Paulo Teixeira
Journal:  Nanomaterials (Basel)       Date:  2021-06-07       Impact factor: 5.076

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