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A Novel 3D Culture Scaffold to Shorten Development Time for Multicellular Tumor Spheroids

Multicellular tumor spheroids and tumoroids are considered ideal in vitro models that reflect the features of the tumor microenvironment. Biomimetic components resembling the extracellular matrix form scaffolds to provide structure to 3-dimensional (3D) culture systems, supporting the growth of both...

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Autores principales: Yang, Cian-Ru, Liang, Chu-Ting, Tsai, Shih-Chieh, Wu, Yu-Chun, Liu, Ching-Wen, Yang, Hui-Hua, Tu, Ting-Yuan, Lee, Yueh-Chun, Hsiao, Kuei-Yang, Chang, Wei-Chun, Ma, Wen-Lung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9699299/
https://www.ncbi.nlm.nih.gov/pubmed/36430445
http://dx.doi.org/10.3390/ijms232213962
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author Yang, Cian-Ru
Liang, Chu-Ting
Tsai, Shih-Chieh
Wu, Yu-Chun
Liu, Ching-Wen
Yang, Hui-Hua
Tu, Ting-Yuan
Lee, Yueh-Chun
Hsiao, Kuei-Yang
Chang, Wei-Chun
Ma, Wen-Lung
author_facet Yang, Cian-Ru
Liang, Chu-Ting
Tsai, Shih-Chieh
Wu, Yu-Chun
Liu, Ching-Wen
Yang, Hui-Hua
Tu, Ting-Yuan
Lee, Yueh-Chun
Hsiao, Kuei-Yang
Chang, Wei-Chun
Ma, Wen-Lung
author_sort Yang, Cian-Ru
collection PubMed
description Multicellular tumor spheroids and tumoroids are considered ideal in vitro models that reflect the features of the tumor microenvironment. Biomimetic components resembling the extracellular matrix form scaffolds to provide structure to 3-dimensional (3D) culture systems, supporting the growth of both spheroids and tumoroids. Although Matrigel has long been used to support 3D culture systems, batch variations, component complexity, and the use of components derived from tumors are complicating factors. To address these issues, we developed the ACD 3D culture system to provide better control and consistency. We evaluated spheroid and tumoroid formation using the ACD 3D culture system, including the assessment of cell viability and cancer marker expression. Under ACD 3D culture conditions, spheroids derived from cancer cell lines exhibited cancer stem cell characteristics, including a sphere-forming size and the expression of stem cell marker genes. The ACD 3D culture system was also able to support patient-derived primary cells and organoid cell cultures, displaying adequate cell growth, appropriate morphology, and resistance to oxaliplatin treatment. These spheroids could also be used for drug screening purposes. In conclusion, the ACD 3D culture system represents an efficient tool for basic cancer research and therapeutic development.
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spelling pubmed-96992992022-11-26 A Novel 3D Culture Scaffold to Shorten Development Time for Multicellular Tumor Spheroids Yang, Cian-Ru Liang, Chu-Ting Tsai, Shih-Chieh Wu, Yu-Chun Liu, Ching-Wen Yang, Hui-Hua Tu, Ting-Yuan Lee, Yueh-Chun Hsiao, Kuei-Yang Chang, Wei-Chun Ma, Wen-Lung Int J Mol Sci Article Multicellular tumor spheroids and tumoroids are considered ideal in vitro models that reflect the features of the tumor microenvironment. Biomimetic components resembling the extracellular matrix form scaffolds to provide structure to 3-dimensional (3D) culture systems, supporting the growth of both spheroids and tumoroids. Although Matrigel has long been used to support 3D culture systems, batch variations, component complexity, and the use of components derived from tumors are complicating factors. To address these issues, we developed the ACD 3D culture system to provide better control and consistency. We evaluated spheroid and tumoroid formation using the ACD 3D culture system, including the assessment of cell viability and cancer marker expression. Under ACD 3D culture conditions, spheroids derived from cancer cell lines exhibited cancer stem cell characteristics, including a sphere-forming size and the expression of stem cell marker genes. The ACD 3D culture system was also able to support patient-derived primary cells and organoid cell cultures, displaying adequate cell growth, appropriate morphology, and resistance to oxaliplatin treatment. These spheroids could also be used for drug screening purposes. In conclusion, the ACD 3D culture system represents an efficient tool for basic cancer research and therapeutic development. MDPI 2022-11-12 /pmc/articles/PMC9699299/ /pubmed/36430445 http://dx.doi.org/10.3390/ijms232213962 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
Yang, Cian-Ru
Liang, Chu-Ting
Tsai, Shih-Chieh
Wu, Yu-Chun
Liu, Ching-Wen
Yang, Hui-Hua
Tu, Ting-Yuan
Lee, Yueh-Chun
Hsiao, Kuei-Yang
Chang, Wei-Chun
Ma, Wen-Lung
A Novel 3D Culture Scaffold to Shorten Development Time for Multicellular Tumor Spheroids
title A Novel 3D Culture Scaffold to Shorten Development Time for Multicellular Tumor Spheroids
title_full A Novel 3D Culture Scaffold to Shorten Development Time for Multicellular Tumor Spheroids
title_fullStr A Novel 3D Culture Scaffold to Shorten Development Time for Multicellular Tumor Spheroids
title_full_unstemmed A Novel 3D Culture Scaffold to Shorten Development Time for Multicellular Tumor Spheroids
title_short A Novel 3D Culture Scaffold to Shorten Development Time for Multicellular Tumor Spheroids
title_sort novel 3d culture scaffold to shorten development time for multicellular tumor spheroids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9699299/
https://www.ncbi.nlm.nih.gov/pubmed/36430445
http://dx.doi.org/10.3390/ijms232213962
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