Cargando…

INSIDIA 2.0 High-Throughput Analysis of 3D Cancer Models: Multiparametric Quantification of Graphene Quantum Dots Photothermal Therapy for Glioblastoma and Pancreatic Cancer

Cancer spheroids are in vitro 3D models that became crucial in nanomaterials science thanks to the possibility of performing high throughput screening of nanoparticles and combined nanoparticle-drug therapies on in vitro models. However, most of the current spheroid analysis methods involve manual s...

Descripción completa

Detalles Bibliográficos
Autores principales: Perini, Giordano, Rosa, Enrico, Friggeri, Ginevra, Di Pietro, Lorena, Barba, Marta, Parolini, Ornella, Ciasca, Gabriele, Moriconi, Chiara, Papi, Massimiliano, De Spirito, Marco, Palmieri, Valentina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8948775/
https://www.ncbi.nlm.nih.gov/pubmed/35328638
http://dx.doi.org/10.3390/ijms23063217
_version_ 1784674734156283904
author Perini, Giordano
Rosa, Enrico
Friggeri, Ginevra
Di Pietro, Lorena
Barba, Marta
Parolini, Ornella
Ciasca, Gabriele
Moriconi, Chiara
Papi, Massimiliano
De Spirito, Marco
Palmieri, Valentina
author_facet Perini, Giordano
Rosa, Enrico
Friggeri, Ginevra
Di Pietro, Lorena
Barba, Marta
Parolini, Ornella
Ciasca, Gabriele
Moriconi, Chiara
Papi, Massimiliano
De Spirito, Marco
Palmieri, Valentina
author_sort Perini, Giordano
collection PubMed
description Cancer spheroids are in vitro 3D models that became crucial in nanomaterials science thanks to the possibility of performing high throughput screening of nanoparticles and combined nanoparticle-drug therapies on in vitro models. However, most of the current spheroid analysis methods involve manual steps. This is a time-consuming process and is extremely liable to the variability of individual operators. For this reason, rapid, user-friendly, ready-to-use, high-throughput image analysis software is necessary. In this work, we report the INSIDIA 2.0 macro, which offers researchers high-throughput and high content quantitative analysis of in vitro 3D cancer cell spheroids and allows advanced parametrization of the expanding and invading cancer cellular mass. INSIDIA has been implemented to provide in-depth morphologic analysis and has been used for the analysis of the effect of graphene quantum dots photothermal therapy on glioblastoma (U87) and pancreatic cancer (PANC-1) spheroids. Thanks to INSIDIA 2.0 analysis, two types of effects have been observed: In U87 spheroids, death is accompanied by a decrease in area of the entire spheroid, with a decrease in entropy due to the generation of a high uniform density spheroid core. On the other hand, PANC-1 spheroids’ death caused by nanoparticle photothermal disruption is accompanied with an overall increase in area and entropy due to the progressive loss of integrity and increase in variability of spheroid texture. We have summarized these effects in a quantitative parameter of spheroid disruption demonstrating that INSIDIA 2.0 multiparametric analysis can be used to quantify cell death in a non-invasive, fast, and high-throughput fashion.
format Online
Article
Text
id pubmed-8948775
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-89487752022-03-26 INSIDIA 2.0 High-Throughput Analysis of 3D Cancer Models: Multiparametric Quantification of Graphene Quantum Dots Photothermal Therapy for Glioblastoma and Pancreatic Cancer Perini, Giordano Rosa, Enrico Friggeri, Ginevra Di Pietro, Lorena Barba, Marta Parolini, Ornella Ciasca, Gabriele Moriconi, Chiara Papi, Massimiliano De Spirito, Marco Palmieri, Valentina Int J Mol Sci Article Cancer spheroids are in vitro 3D models that became crucial in nanomaterials science thanks to the possibility of performing high throughput screening of nanoparticles and combined nanoparticle-drug therapies on in vitro models. However, most of the current spheroid analysis methods involve manual steps. This is a time-consuming process and is extremely liable to the variability of individual operators. For this reason, rapid, user-friendly, ready-to-use, high-throughput image analysis software is necessary. In this work, we report the INSIDIA 2.0 macro, which offers researchers high-throughput and high content quantitative analysis of in vitro 3D cancer cell spheroids and allows advanced parametrization of the expanding and invading cancer cellular mass. INSIDIA has been implemented to provide in-depth morphologic analysis and has been used for the analysis of the effect of graphene quantum dots photothermal therapy on glioblastoma (U87) and pancreatic cancer (PANC-1) spheroids. Thanks to INSIDIA 2.0 analysis, two types of effects have been observed: In U87 spheroids, death is accompanied by a decrease in area of the entire spheroid, with a decrease in entropy due to the generation of a high uniform density spheroid core. On the other hand, PANC-1 spheroids’ death caused by nanoparticle photothermal disruption is accompanied with an overall increase in area and entropy due to the progressive loss of integrity and increase in variability of spheroid texture. We have summarized these effects in a quantitative parameter of spheroid disruption demonstrating that INSIDIA 2.0 multiparametric analysis can be used to quantify cell death in a non-invasive, fast, and high-throughput fashion. MDPI 2022-03-16 /pmc/articles/PMC8948775/ /pubmed/35328638 http://dx.doi.org/10.3390/ijms23063217 Text en © 2022 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
Perini, Giordano
Rosa, Enrico
Friggeri, Ginevra
Di Pietro, Lorena
Barba, Marta
Parolini, Ornella
Ciasca, Gabriele
Moriconi, Chiara
Papi, Massimiliano
De Spirito, Marco
Palmieri, Valentina
INSIDIA 2.0 High-Throughput Analysis of 3D Cancer Models: Multiparametric Quantification of Graphene Quantum Dots Photothermal Therapy for Glioblastoma and Pancreatic Cancer
title INSIDIA 2.0 High-Throughput Analysis of 3D Cancer Models: Multiparametric Quantification of Graphene Quantum Dots Photothermal Therapy for Glioblastoma and Pancreatic Cancer
title_full INSIDIA 2.0 High-Throughput Analysis of 3D Cancer Models: Multiparametric Quantification of Graphene Quantum Dots Photothermal Therapy for Glioblastoma and Pancreatic Cancer
title_fullStr INSIDIA 2.0 High-Throughput Analysis of 3D Cancer Models: Multiparametric Quantification of Graphene Quantum Dots Photothermal Therapy for Glioblastoma and Pancreatic Cancer
title_full_unstemmed INSIDIA 2.0 High-Throughput Analysis of 3D Cancer Models: Multiparametric Quantification of Graphene Quantum Dots Photothermal Therapy for Glioblastoma and Pancreatic Cancer
title_short INSIDIA 2.0 High-Throughput Analysis of 3D Cancer Models: Multiparametric Quantification of Graphene Quantum Dots Photothermal Therapy for Glioblastoma and Pancreatic Cancer
title_sort insidia 2.0 high-throughput analysis of 3d cancer models: multiparametric quantification of graphene quantum dots photothermal therapy for glioblastoma and pancreatic cancer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8948775/
https://www.ncbi.nlm.nih.gov/pubmed/35328638
http://dx.doi.org/10.3390/ijms23063217
work_keys_str_mv AT perinigiordano insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT rosaenrico insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT friggeriginevra insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT dipietrolorena insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT barbamarta insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT paroliniornella insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT ciascagabriele insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT moriconichiara insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT papimassimiliano insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT despiritomarco insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer
AT palmierivalentina insidia20highthroughputanalysisof3dcancermodelsmultiparametricquantificationofgraphenequantumdotsphotothermaltherapyforglioblastomaandpancreaticcancer