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A reliable workflow for improving nanoscale X-ray fluorescence tomographic analysis on nanoparticle-treated HeLa cells

Scanning X-ray fluorescence (XRF) tomography provides powerful characterization capabilities in evaluating elemental distribution and differentiating their inter- and intra-cellular interactions in a three-dimensional (3D) space. Scanning XRF tomography encounters practical challenges from the sampl...

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Autores principales: Luo, Yanqi, Paunesku, Tatjana, Antipova, Olga, Liu, Yuzi, Zaluzec, Nestor J, Di, Zichao, Woloschak, Gayle, Chen, Si
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9434635/
https://www.ncbi.nlm.nih.gov/pubmed/35751648
http://dx.doi.org/10.1093/mtomcs/mfac025
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author Luo, Yanqi
Paunesku, Tatjana
Antipova, Olga
Liu, Yuzi
Zaluzec, Nestor J
Di, Zichao
Woloschak, Gayle
Chen, Si
author_facet Luo, Yanqi
Paunesku, Tatjana
Antipova, Olga
Liu, Yuzi
Zaluzec, Nestor J
Di, Zichao
Woloschak, Gayle
Chen, Si
author_sort Luo, Yanqi
collection PubMed
description Scanning X-ray fluorescence (XRF) tomography provides powerful characterization capabilities in evaluating elemental distribution and differentiating their inter- and intra-cellular interactions in a three-dimensional (3D) space. Scanning XRF tomography encounters practical challenges from the sample itself, where the range of rotation angles is limited by geometric constraints, involving sample substrates or nearby features either blocking or converging into the field of view. This study aims to develop a reliable and efficient workflow that can (1) expand the experimental window for nanoscale tomographic analysis of local areas of interest within a laterally extended specimen, and (2) bridge 3D analysis at micrometer and nanoscales on the same specimen. We demonstrate the workflow using a specimen of HeLa cells exposed to iron oxide core and titanium dioxide shell (Fe(3)O(4)/TiO(2)) nanocomposites. The workflow utilizes iterative and multiscale XRF data collection with intermediate sample processing by focused ion beam (FIB) sample preparation between measurements at different length scales. Initial assessment combined with precise sample manipulation via FIB allows direct removal of sample regions that are obstacles to both incident X-ray beam and outgoing XRF signals, which considerably improves the subsequent nanoscale tomography analysis. This multiscale analysis workflow has advanced bio-nanotechnology studies by providing deep insights into the interaction between nanocomposites and single cells at a subcellular level as well as statistical assessments from measuring a population of cells.
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spelling pubmed-94346352022-09-01 A reliable workflow for improving nanoscale X-ray fluorescence tomographic analysis on nanoparticle-treated HeLa cells Luo, Yanqi Paunesku, Tatjana Antipova, Olga Liu, Yuzi Zaluzec, Nestor J Di, Zichao Woloschak, Gayle Chen, Si Metallomics Paper Scanning X-ray fluorescence (XRF) tomography provides powerful characterization capabilities in evaluating elemental distribution and differentiating their inter- and intra-cellular interactions in a three-dimensional (3D) space. Scanning XRF tomography encounters practical challenges from the sample itself, where the range of rotation angles is limited by geometric constraints, involving sample substrates or nearby features either blocking or converging into the field of view. This study aims to develop a reliable and efficient workflow that can (1) expand the experimental window for nanoscale tomographic analysis of local areas of interest within a laterally extended specimen, and (2) bridge 3D analysis at micrometer and nanoscales on the same specimen. We demonstrate the workflow using a specimen of HeLa cells exposed to iron oxide core and titanium dioxide shell (Fe(3)O(4)/TiO(2)) nanocomposites. The workflow utilizes iterative and multiscale XRF data collection with intermediate sample processing by focused ion beam (FIB) sample preparation between measurements at different length scales. Initial assessment combined with precise sample manipulation via FIB allows direct removal of sample regions that are obstacles to both incident X-ray beam and outgoing XRF signals, which considerably improves the subsequent nanoscale tomography analysis. This multiscale analysis workflow has advanced bio-nanotechnology studies by providing deep insights into the interaction between nanocomposites and single cells at a subcellular level as well as statistical assessments from measuring a population of cells. Oxford University Press 2022-06-25 /pmc/articles/PMC9434635/ /pubmed/35751648 http://dx.doi.org/10.1093/mtomcs/mfac025 Text en © UChicago Argonne, LLC, Operator of Argonne National Laboratory, 2022. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Paper
Luo, Yanqi
Paunesku, Tatjana
Antipova, Olga
Liu, Yuzi
Zaluzec, Nestor J
Di, Zichao
Woloschak, Gayle
Chen, Si
A reliable workflow for improving nanoscale X-ray fluorescence tomographic analysis on nanoparticle-treated HeLa cells
title A reliable workflow for improving nanoscale X-ray fluorescence tomographic analysis on nanoparticle-treated HeLa cells
title_full A reliable workflow for improving nanoscale X-ray fluorescence tomographic analysis on nanoparticle-treated HeLa cells
title_fullStr A reliable workflow for improving nanoscale X-ray fluorescence tomographic analysis on nanoparticle-treated HeLa cells
title_full_unstemmed A reliable workflow for improving nanoscale X-ray fluorescence tomographic analysis on nanoparticle-treated HeLa cells
title_short A reliable workflow for improving nanoscale X-ray fluorescence tomographic analysis on nanoparticle-treated HeLa cells
title_sort reliable workflow for improving nanoscale x-ray fluorescence tomographic analysis on nanoparticle-treated hela cells
topic Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9434635/
https://www.ncbi.nlm.nih.gov/pubmed/35751648
http://dx.doi.org/10.1093/mtomcs/mfac025
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