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Multiplex Analysis of CircRNAs from Plasma Extracellular Vesicle-Enriched Samples for the Detection of Early-Stage Non-Small Cell Lung Cancer

Background: The analysis of liquid biopsies brings new opportunities in the precision oncology field. Under this context, extracellular vesicle circular RNAs (EV-circRNAs) have gained interest as biomarkers for lung cancer (LC) detection. However, standardized and robust protocols need to be develop...

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Autores principales: Pedraz-Valdunciel, Carlos, Giannoukakos, Stavros, Giménez-Capitán, Ana, Fortunato, Diogo, Filipska, Martyna, Bertran-Alamillo, Jordi, Bracht, Jillian W. P., Drozdowskyj, Ana, Valarezo, Joselyn, Zarovni, Natasa, Fernández-Hilario, Alberto, Hackenberg, Michael, Aguilar-Hernández, Andrés, Molina-Vila, Miguel Ángel, Rosell, Rafael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9610636/
https://www.ncbi.nlm.nih.gov/pubmed/36297470
http://dx.doi.org/10.3390/pharmaceutics14102034
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author Pedraz-Valdunciel, Carlos
Giannoukakos, Stavros
Giménez-Capitán, Ana
Fortunato, Diogo
Filipska, Martyna
Bertran-Alamillo, Jordi
Bracht, Jillian W. P.
Drozdowskyj, Ana
Valarezo, Joselyn
Zarovni, Natasa
Fernández-Hilario, Alberto
Hackenberg, Michael
Aguilar-Hernández, Andrés
Molina-Vila, Miguel Ángel
Rosell, Rafael
author_facet Pedraz-Valdunciel, Carlos
Giannoukakos, Stavros
Giménez-Capitán, Ana
Fortunato, Diogo
Filipska, Martyna
Bertran-Alamillo, Jordi
Bracht, Jillian W. P.
Drozdowskyj, Ana
Valarezo, Joselyn
Zarovni, Natasa
Fernández-Hilario, Alberto
Hackenberg, Michael
Aguilar-Hernández, Andrés
Molina-Vila, Miguel Ángel
Rosell, Rafael
author_sort Pedraz-Valdunciel, Carlos
collection PubMed
description Background: The analysis of liquid biopsies brings new opportunities in the precision oncology field. Under this context, extracellular vesicle circular RNAs (EV-circRNAs) have gained interest as biomarkers for lung cancer (LC) detection. However, standardized and robust protocols need to be developed to boost their potential in the clinical setting. Although nCounter has been used for the analysis of other liquid biopsy substrates and biomarkers, it has never been employed for EV-circRNA analysis of LC patients. Methods: EVs were isolated from early-stage LC patients (n = 36) and controls (n = 30). Different volumes of plasma, together with different number of pre-amplification cycles, were tested to reach the best nCounter outcome. Differential expression analysis of circRNAs was performed, along with the testing of different machine learning (ML) methods for the development of a prognostic signature for LC. Results: A combination of 500 μL of plasma input with 10 cycles of pre-amplification was selected for the rest of the study. Eight circRNAs were found upregulated in LC. Further ML analysis selected a 10-circRNA signature able to discriminate LC from controls with AUC ROC of 0.86. Conclusions: This study validates the use of the nCounter platform for multiplexed EV-circRNA expression studies in LC patient samples, allowing the development of prognostic signatures.
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spelling pubmed-96106362022-10-28 Multiplex Analysis of CircRNAs from Plasma Extracellular Vesicle-Enriched Samples for the Detection of Early-Stage Non-Small Cell Lung Cancer Pedraz-Valdunciel, Carlos Giannoukakos, Stavros Giménez-Capitán, Ana Fortunato, Diogo Filipska, Martyna Bertran-Alamillo, Jordi Bracht, Jillian W. P. Drozdowskyj, Ana Valarezo, Joselyn Zarovni, Natasa Fernández-Hilario, Alberto Hackenberg, Michael Aguilar-Hernández, Andrés Molina-Vila, Miguel Ángel Rosell, Rafael Pharmaceutics Article Background: The analysis of liquid biopsies brings new opportunities in the precision oncology field. Under this context, extracellular vesicle circular RNAs (EV-circRNAs) have gained interest as biomarkers for lung cancer (LC) detection. However, standardized and robust protocols need to be developed to boost their potential in the clinical setting. Although nCounter has been used for the analysis of other liquid biopsy substrates and biomarkers, it has never been employed for EV-circRNA analysis of LC patients. Methods: EVs were isolated from early-stage LC patients (n = 36) and controls (n = 30). Different volumes of plasma, together with different number of pre-amplification cycles, were tested to reach the best nCounter outcome. Differential expression analysis of circRNAs was performed, along with the testing of different machine learning (ML) methods for the development of a prognostic signature for LC. Results: A combination of 500 μL of plasma input with 10 cycles of pre-amplification was selected for the rest of the study. Eight circRNAs were found upregulated in LC. Further ML analysis selected a 10-circRNA signature able to discriminate LC from controls with AUC ROC of 0.86. Conclusions: This study validates the use of the nCounter platform for multiplexed EV-circRNA expression studies in LC patient samples, allowing the development of prognostic signatures. MDPI 2022-09-24 /pmc/articles/PMC9610636/ /pubmed/36297470 http://dx.doi.org/10.3390/pharmaceutics14102034 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
Pedraz-Valdunciel, Carlos
Giannoukakos, Stavros
Giménez-Capitán, Ana
Fortunato, Diogo
Filipska, Martyna
Bertran-Alamillo, Jordi
Bracht, Jillian W. P.
Drozdowskyj, Ana
Valarezo, Joselyn
Zarovni, Natasa
Fernández-Hilario, Alberto
Hackenberg, Michael
Aguilar-Hernández, Andrés
Molina-Vila, Miguel Ángel
Rosell, Rafael
Multiplex Analysis of CircRNAs from Plasma Extracellular Vesicle-Enriched Samples for the Detection of Early-Stage Non-Small Cell Lung Cancer
title Multiplex Analysis of CircRNAs from Plasma Extracellular Vesicle-Enriched Samples for the Detection of Early-Stage Non-Small Cell Lung Cancer
title_full Multiplex Analysis of CircRNAs from Plasma Extracellular Vesicle-Enriched Samples for the Detection of Early-Stage Non-Small Cell Lung Cancer
title_fullStr Multiplex Analysis of CircRNAs from Plasma Extracellular Vesicle-Enriched Samples for the Detection of Early-Stage Non-Small Cell Lung Cancer
title_full_unstemmed Multiplex Analysis of CircRNAs from Plasma Extracellular Vesicle-Enriched Samples for the Detection of Early-Stage Non-Small Cell Lung Cancer
title_short Multiplex Analysis of CircRNAs from Plasma Extracellular Vesicle-Enriched Samples for the Detection of Early-Stage Non-Small Cell Lung Cancer
title_sort multiplex analysis of circrnas from plasma extracellular vesicle-enriched samples for the detection of early-stage non-small cell lung cancer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9610636/
https://www.ncbi.nlm.nih.gov/pubmed/36297470
http://dx.doi.org/10.3390/pharmaceutics14102034
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