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A Novel Nanosafety Approach Using Cell Painting, Metabolomics, and Lipidomics Captures the Cellular and Molecular Phenotypes Induced by the Unintentionally Formed Metal-Based (Nano)Particles

Additive manufacturing (AM) or industrial 3D printing uses cutting-edge technologies and materials to produce a variety of complex products. However, the effects of the unintentionally emitted AM (nano)particles (AMPs) on human cells following inhalation, require further investigations. The physicoc...

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Autores principales: Alijagic, Andi, Scherbak, Nikolai, Kotlyar, Oleksandr, Karlsson, Patrik, Wang, Xuying, Odnevall, Inger, Benada, Oldřich, Amiryousefi, Ali, Andersson, Lena, Persson, Alexander, Felth, Jenny, Andersson, Henrik, Larsson, Maria, Hedbrant, Alexander, Salihovic, Samira, Hyötyläinen, Tuulia, Repsilber, Dirk, Särndahl, Eva, Engwall, Magnus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9856453/
https://www.ncbi.nlm.nih.gov/pubmed/36672217
http://dx.doi.org/10.3390/cells12020281
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author Alijagic, Andi
Scherbak, Nikolai
Kotlyar, Oleksandr
Karlsson, Patrik
Wang, Xuying
Odnevall, Inger
Benada, Oldřich
Amiryousefi, Ali
Andersson, Lena
Persson, Alexander
Felth, Jenny
Andersson, Henrik
Larsson, Maria
Hedbrant, Alexander
Salihovic, Samira
Hyötyläinen, Tuulia
Repsilber, Dirk
Särndahl, Eva
Engwall, Magnus
author_facet Alijagic, Andi
Scherbak, Nikolai
Kotlyar, Oleksandr
Karlsson, Patrik
Wang, Xuying
Odnevall, Inger
Benada, Oldřich
Amiryousefi, Ali
Andersson, Lena
Persson, Alexander
Felth, Jenny
Andersson, Henrik
Larsson, Maria
Hedbrant, Alexander
Salihovic, Samira
Hyötyläinen, Tuulia
Repsilber, Dirk
Särndahl, Eva
Engwall, Magnus
author_sort Alijagic, Andi
collection PubMed
description Additive manufacturing (AM) or industrial 3D printing uses cutting-edge technologies and materials to produce a variety of complex products. However, the effects of the unintentionally emitted AM (nano)particles (AMPs) on human cells following inhalation, require further investigations. The physicochemical characterization of the AMPs, extracted from the filter of a Laser Powder Bed Fusion (L-PBF) 3D printer of iron-based materials, disclosed their complexity, in terms of size, shape, and chemistry. Cell Painting, a high-content screening (HCS) assay, was used to detect the subtle morphological changes elicited by the AMPs at the single cell resolution. The profiling of the cell morphological phenotypes, disclosed prominent concentration-dependent effects on the cytoskeleton, mitochondria, and the membranous structures of the cell. Furthermore, lipidomics confirmed that the AMPs induced the extensive membrane remodeling in the lung epithelial and macrophage co-culture cell model. To further elucidate the biological mechanisms of action, the targeted metabolomics unveiled several inflammation-related metabolites regulating the cell response to the AMP exposure. Overall, the AMP exposure led to the internalization, oxidative stress, cytoskeleton disruption, mitochondrial activation, membrane remodeling, and metabolic reprogramming of the lung epithelial cells and macrophages. We propose the approach of integrating Cell Painting with metabolomics and lipidomics, as an advanced nanosafety methodology, increasing the ability to capture the cellular and molecular phenotypes and the relevant biological mechanisms to the (nano)particle exposure.
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spelling pubmed-98564532023-01-21 A Novel Nanosafety Approach Using Cell Painting, Metabolomics, and Lipidomics Captures the Cellular and Molecular Phenotypes Induced by the Unintentionally Formed Metal-Based (Nano)Particles Alijagic, Andi Scherbak, Nikolai Kotlyar, Oleksandr Karlsson, Patrik Wang, Xuying Odnevall, Inger Benada, Oldřich Amiryousefi, Ali Andersson, Lena Persson, Alexander Felth, Jenny Andersson, Henrik Larsson, Maria Hedbrant, Alexander Salihovic, Samira Hyötyläinen, Tuulia Repsilber, Dirk Särndahl, Eva Engwall, Magnus Cells Article Additive manufacturing (AM) or industrial 3D printing uses cutting-edge technologies and materials to produce a variety of complex products. However, the effects of the unintentionally emitted AM (nano)particles (AMPs) on human cells following inhalation, require further investigations. The physicochemical characterization of the AMPs, extracted from the filter of a Laser Powder Bed Fusion (L-PBF) 3D printer of iron-based materials, disclosed their complexity, in terms of size, shape, and chemistry. Cell Painting, a high-content screening (HCS) assay, was used to detect the subtle morphological changes elicited by the AMPs at the single cell resolution. The profiling of the cell morphological phenotypes, disclosed prominent concentration-dependent effects on the cytoskeleton, mitochondria, and the membranous structures of the cell. Furthermore, lipidomics confirmed that the AMPs induced the extensive membrane remodeling in the lung epithelial and macrophage co-culture cell model. To further elucidate the biological mechanisms of action, the targeted metabolomics unveiled several inflammation-related metabolites regulating the cell response to the AMP exposure. Overall, the AMP exposure led to the internalization, oxidative stress, cytoskeleton disruption, mitochondrial activation, membrane remodeling, and metabolic reprogramming of the lung epithelial cells and macrophages. We propose the approach of integrating Cell Painting with metabolomics and lipidomics, as an advanced nanosafety methodology, increasing the ability to capture the cellular and molecular phenotypes and the relevant biological mechanisms to the (nano)particle exposure. MDPI 2023-01-11 /pmc/articles/PMC9856453/ /pubmed/36672217 http://dx.doi.org/10.3390/cells12020281 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Alijagic, Andi
Scherbak, Nikolai
Kotlyar, Oleksandr
Karlsson, Patrik
Wang, Xuying
Odnevall, Inger
Benada, Oldřich
Amiryousefi, Ali
Andersson, Lena
Persson, Alexander
Felth, Jenny
Andersson, Henrik
Larsson, Maria
Hedbrant, Alexander
Salihovic, Samira
Hyötyläinen, Tuulia
Repsilber, Dirk
Särndahl, Eva
Engwall, Magnus
A Novel Nanosafety Approach Using Cell Painting, Metabolomics, and Lipidomics Captures the Cellular and Molecular Phenotypes Induced by the Unintentionally Formed Metal-Based (Nano)Particles
title A Novel Nanosafety Approach Using Cell Painting, Metabolomics, and Lipidomics Captures the Cellular and Molecular Phenotypes Induced by the Unintentionally Formed Metal-Based (Nano)Particles
title_full A Novel Nanosafety Approach Using Cell Painting, Metabolomics, and Lipidomics Captures the Cellular and Molecular Phenotypes Induced by the Unintentionally Formed Metal-Based (Nano)Particles
title_fullStr A Novel Nanosafety Approach Using Cell Painting, Metabolomics, and Lipidomics Captures the Cellular and Molecular Phenotypes Induced by the Unintentionally Formed Metal-Based (Nano)Particles
title_full_unstemmed A Novel Nanosafety Approach Using Cell Painting, Metabolomics, and Lipidomics Captures the Cellular and Molecular Phenotypes Induced by the Unintentionally Formed Metal-Based (Nano)Particles
title_short A Novel Nanosafety Approach Using Cell Painting, Metabolomics, and Lipidomics Captures the Cellular and Molecular Phenotypes Induced by the Unintentionally Formed Metal-Based (Nano)Particles
title_sort novel nanosafety approach using cell painting, metabolomics, and lipidomics captures the cellular and molecular phenotypes induced by the unintentionally formed metal-based (nano)particles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9856453/
https://www.ncbi.nlm.nih.gov/pubmed/36672217
http://dx.doi.org/10.3390/cells12020281
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