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3D Neuronal Cell Culture Modeling Based on Highly Porous Ultra-High Molecular Weight Polyethylene

Cell culturing methods in its classical 2D approach have limitations associated with altered cell morphology, gene expression patterns, migration, cell cycle and proliferation. Moreover, high throughput drug screening is mainly performed on 2D cell cultures which are physiologically far from proper...

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Autores principales: Ustyugov, Aleksey A., Sipyagina, Nataliya A., Malkova, Alena N., Straumal, Elena A., Yurkova, Lyudmila L., Globa, Anastasiya A., Lapshina, Maria A., Chicheva, Maria M., Chaprov, Kirill D., Maksimkin, Aleksey V., Lermontov, Sergey A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9000589/
https://www.ncbi.nlm.nih.gov/pubmed/35408484
http://dx.doi.org/10.3390/molecules27072087
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author Ustyugov, Aleksey A.
Sipyagina, Nataliya A.
Malkova, Alena N.
Straumal, Elena A.
Yurkova, Lyudmila L.
Globa, Anastasiya A.
Lapshina, Maria A.
Chicheva, Maria M.
Chaprov, Kirill D.
Maksimkin, Aleksey V.
Lermontov, Sergey A.
author_facet Ustyugov, Aleksey A.
Sipyagina, Nataliya A.
Malkova, Alena N.
Straumal, Elena A.
Yurkova, Lyudmila L.
Globa, Anastasiya A.
Lapshina, Maria A.
Chicheva, Maria M.
Chaprov, Kirill D.
Maksimkin, Aleksey V.
Lermontov, Sergey A.
author_sort Ustyugov, Aleksey A.
collection PubMed
description Cell culturing methods in its classical 2D approach have limitations associated with altered cell morphology, gene expression patterns, migration, cell cycle and proliferation. Moreover, high throughput drug screening is mainly performed on 2D cell cultures which are physiologically far from proper cell functions resulting in inadequate hit-compounds which subsequently fail. A shift to 3D culturing protocols could solve issues with altered cell biochemistry and signaling which would lead to a proper recapitulation of physiological conditions in test systems. Here, we examined porous ultra-high molecular weight polyethylene (UHMWPE) as an inexpensive and robust material with varying pore sizes for cell culturing. We tested and developed culturing protocols for immortalized human neuroblastoma and primary mice hippocampal cells which resulted in high rate of cell penetration within one week of cultivation. UHMWPE was additionally functionalized with gelatin, poly-L-lysine, BSA and chitosan, resulting in increased cell penetrations of the material. We have also successfully traced GFP-tagged cells which were grown on a UHMWPE sample after one week from implantation into mice brain. Our findings highlight the importance of UHMWPE use as a 3D matrix and show new possibilities arising from the use of cheap and chemically homogeneous material for studying various types of cell-surface interactions further improving cell adhesion, viability and biocompatibility.
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spelling pubmed-90005892022-04-12 3D Neuronal Cell Culture Modeling Based on Highly Porous Ultra-High Molecular Weight Polyethylene Ustyugov, Aleksey A. Sipyagina, Nataliya A. Malkova, Alena N. Straumal, Elena A. Yurkova, Lyudmila L. Globa, Anastasiya A. Lapshina, Maria A. Chicheva, Maria M. Chaprov, Kirill D. Maksimkin, Aleksey V. Lermontov, Sergey A. Molecules Article Cell culturing methods in its classical 2D approach have limitations associated with altered cell morphology, gene expression patterns, migration, cell cycle and proliferation. Moreover, high throughput drug screening is mainly performed on 2D cell cultures which are physiologically far from proper cell functions resulting in inadequate hit-compounds which subsequently fail. A shift to 3D culturing protocols could solve issues with altered cell biochemistry and signaling which would lead to a proper recapitulation of physiological conditions in test systems. Here, we examined porous ultra-high molecular weight polyethylene (UHMWPE) as an inexpensive and robust material with varying pore sizes for cell culturing. We tested and developed culturing protocols for immortalized human neuroblastoma and primary mice hippocampal cells which resulted in high rate of cell penetration within one week of cultivation. UHMWPE was additionally functionalized with gelatin, poly-L-lysine, BSA and chitosan, resulting in increased cell penetrations of the material. We have also successfully traced GFP-tagged cells which were grown on a UHMWPE sample after one week from implantation into mice brain. Our findings highlight the importance of UHMWPE use as a 3D matrix and show new possibilities arising from the use of cheap and chemically homogeneous material for studying various types of cell-surface interactions further improving cell adhesion, viability and biocompatibility. MDPI 2022-03-24 /pmc/articles/PMC9000589/ /pubmed/35408484 http://dx.doi.org/10.3390/molecules27072087 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
Ustyugov, Aleksey A.
Sipyagina, Nataliya A.
Malkova, Alena N.
Straumal, Elena A.
Yurkova, Lyudmila L.
Globa, Anastasiya A.
Lapshina, Maria A.
Chicheva, Maria M.
Chaprov, Kirill D.
Maksimkin, Aleksey V.
Lermontov, Sergey A.
3D Neuronal Cell Culture Modeling Based on Highly Porous Ultra-High Molecular Weight Polyethylene
title 3D Neuronal Cell Culture Modeling Based on Highly Porous Ultra-High Molecular Weight Polyethylene
title_full 3D Neuronal Cell Culture Modeling Based on Highly Porous Ultra-High Molecular Weight Polyethylene
title_fullStr 3D Neuronal Cell Culture Modeling Based on Highly Porous Ultra-High Molecular Weight Polyethylene
title_full_unstemmed 3D Neuronal Cell Culture Modeling Based on Highly Porous Ultra-High Molecular Weight Polyethylene
title_short 3D Neuronal Cell Culture Modeling Based on Highly Porous Ultra-High Molecular Weight Polyethylene
title_sort 3d neuronal cell culture modeling based on highly porous ultra-high molecular weight polyethylene
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9000589/
https://www.ncbi.nlm.nih.gov/pubmed/35408484
http://dx.doi.org/10.3390/molecules27072087
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