Literature DB >> 32349469

Tissue Specific Fate of Nanomaterials by Advanced Analytical Imaging Techniques - A Review.

Uschi M Graham1,2, Alan K Dozier1, Günter Oberdörster3, Robert A Yokel2, Ramon Molina4, Joseph D Brain4, Jayant M Pinto5, Jennifer Weuve6, David A Bennett7.   

Abstract

A variety of imaging and analytical methods have been developed to study nanoparticles in cells. Each has its benefits, limitations, and varying degrees of expense and difficulties in implementation. High-resolution analytical scanning transmission electron microscopy (HRSTEM) has the unique ability to image local cellular environments adjacent to a nanoparticle at near atomic resolution and apply analytical tools to these environments such as energy dispersive spectroscopy and electron energy loss spectroscopy. These tools can be used to analyze particle location, translocation and potential reformation, ion dispersion, and in vivo synthesis of second-generation nanoparticles. Such analyses can provide in depth understanding of tissue-particle interactions and effects that are caused by the environmental "invader" nanoparticles. Analytical imaging can also distinguish phases that form due to the transformation of "invader" nanoparticles in contrast to those that are triggered by a response mechanism, including the commonly observed iron biomineralization in the form of ferritin nanoparticles. The analyses can distinguish ion species, crystal phases, and valence of parent nanoparticles and reformed or in vivo synthesized phases throughout the tissue. This article will briefly review the plethora of methods that have been developed over the last 20 years with an emphasis on the state-of-the-art techniques used to image and analyze nanoparticles in cells and highlight the sample preparation necessary for biological thin section observation in a HRSTEM. Specific applications that provide visual and chemical mapping of the local cellular environments surrounding parent nanoparticles and second-generation phases are demonstrated, which will help to identify novel nanoparticle-produced adverse effects and their associated mechanisms.

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Year:  2020        PMID: 32349469      PMCID: PMC7774012          DOI: 10.1021/acs.chemrestox.0c00072

Source DB:  PubMed          Journal:  Chem Res Toxicol        ISSN: 0893-228X            Impact factor:   3.739


  75 in total

Review 1.  Understanding and controlling the interaction of nanomaterials with proteins in a physiological environment.

Authors:  Carl D Walkey; Warren C W Chan
Journal:  Chem Soc Rev       Date:  2011-11-15       Impact factor: 54.564

2.  Balancing research and funding using value of information and portfolio tools for nanomaterial risk classification.

Authors:  Matthew E Bates; Jeffrey M Keisler; Niels P Zussblatt; Kenton J Plourde; Ben A Wender; Igor Linkov
Journal:  Nat Nanotechnol       Date:  2015-11-09       Impact factor: 39.213

3.  New views of materials through aberration-corrected scanning transmission electron microscopy.

Authors:  S J Pennycook; M Varela
Journal:  J Electron Microsc (Tokyo)       Date:  2011

4.  Identification and neuropeptide content of trigeminal neurons innervating the rat nasal epithelium.

Authors:  D D Hunter; R D Dey
Journal:  Neuroscience       Date:  1998-03       Impact factor: 3.590

Review 5.  Nanosafety research--are we on the right track?

Authors:  Harald F Krug
Journal:  Angew Chem Int Ed Engl       Date:  2014-10-10       Impact factor: 15.336

6.  Acute pulmonary effects of ultrafine particles in rats and mice.

Authors:  G Oberdörster; J N Finkelstein; C Johnston; R Gelein; C Cox; R Baggs; A C Elder
Journal:  Res Rep Health Eff Inst       Date:  2000-08

7.  A theoretical framework for predicting the oxidative stress potential of oxide nanoparticles.

Authors:  Enrico Burello; Andrew P Worth
Journal:  Nanotoxicology       Date:  2010-07-15       Impact factor: 5.913

8.  Concept of assessing nanoparticle hazards considering nanoparticle dosemetric and chemical/biological response metrics.

Authors:  Erik K Rushton; Jingkun Jiang; Stephen S Leonard; Shirley Eberly; Vincent Castranova; Pratim Biswas; Alison Elder; Xianglu Han; Robert Gelein; Jacob Finkelstein; Günter Oberdörster
Journal:  J Toxicol Environ Health A       Date:  2010

9.  3D morphology of the human hepatic ferritin mineral core: new evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images.

Authors:  Ying-Hsi Pan; Kasim Sader; Jonathan J Powell; Andrew Bleloch; Mhairi Gass; John Trinick; Alice Warley; Andy Li; Rik Brydson; Andy Brown
Journal:  J Struct Biol       Date:  2008-12-13       Impact factor: 2.867

10.  Interlaboratory evaluation of in vitro cytotoxicity and inflammatory responses to engineered nanomaterials: the NIEHS Nano GO Consortium.

Authors:  Tian Xia; Raymond F Hamilton; James C Bonner; Edward D Crandall; Alison Elder; Farnoosh Fazlollahi; Teri A Girtsman; Kwang Kim; Somenath Mitra; Susana A Ntim; Galya Orr; Mani Tagmount; Alexia J Taylor; Donatello Telesca; Ana Tolic; Christopher D Vulpe; Andrea J Walker; Xiang Wang; Frank A Witzmann; Nianqiang Wu; Yumei Xie; Jeffery I Zink; Andre Nel; Andrij Holian
Journal:  Environ Health Perspect       Date:  2013-05-06       Impact factor: 9.031

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  2 in total

1.  Advanced characterization of biomineralization at plaque layer and inside rice roots amended with iron- and silica-enhanced biochar.

Authors:  Guanhong Chen; Sarasadat Taherymoosavi; Soshan Cheong; Yao Yin; Rabeya Akter; Christopher E Marjo; Anne M Rich; David R G Mitchell; Xiaorong Fan; Jinkiat Chew; Genxing Pan; Lianqing Li; Rongjun Bian; Joseph Horvat; Mohanad Mohammed; Paul Munroe; Stephen Joseph
Journal:  Sci Rep       Date:  2021-01-08       Impact factor: 4.379

Review 2.  Review and Evaluation of the Potential Health Effects of Oxidic Nickel Nanoparticles.

Authors:  Sharlee L More; Michael Kovochich; Tara Lyons-Darden; Michael Taylor; Alexandra M Schulte; Amy K Madl
Journal:  Nanomaterials (Basel)       Date:  2021-03-05       Impact factor: 5.076

  2 in total

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