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MatriGrid(®) Based Biological Morphologies: Tools for 3D Cell Culturing

Recent trends in 3D cell culturing has placed organotypic tissue models at another level. Now, not only is the microenvironment at the cynosure of this research, but rather, microscopic geometrical parameters are also decisive for mimicking a tissue model. Over the years, technologies such as microm...

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Autores principales: Mai, Patrick, Hampl, Jörg, Baca, Martin, Brauer, Dana, Singh, Sukhdeep, Weise, Frank, Borowiec, Justyna, Schmidt, André, Küstner, Johanna Merle, Klett, Maren, Gebinoga, Michael, Schroeder, Insa S., Markert, Udo R., Glahn, Felix, Schumann, Berit, Eckstein, Diana, Schober, Andreas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9138054/
https://www.ncbi.nlm.nih.gov/pubmed/35621498
http://dx.doi.org/10.3390/bioengineering9050220
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author Mai, Patrick
Hampl, Jörg
Baca, Martin
Brauer, Dana
Singh, Sukhdeep
Weise, Frank
Borowiec, Justyna
Schmidt, André
Küstner, Johanna Merle
Klett, Maren
Gebinoga, Michael
Schroeder, Insa S.
Markert, Udo R.
Glahn, Felix
Schumann, Berit
Eckstein, Diana
Schober, Andreas
author_facet Mai, Patrick
Hampl, Jörg
Baca, Martin
Brauer, Dana
Singh, Sukhdeep
Weise, Frank
Borowiec, Justyna
Schmidt, André
Küstner, Johanna Merle
Klett, Maren
Gebinoga, Michael
Schroeder, Insa S.
Markert, Udo R.
Glahn, Felix
Schumann, Berit
Eckstein, Diana
Schober, Andreas
author_sort Mai, Patrick
collection PubMed
description Recent trends in 3D cell culturing has placed organotypic tissue models at another level. Now, not only is the microenvironment at the cynosure of this research, but rather, microscopic geometrical parameters are also decisive for mimicking a tissue model. Over the years, technologies such as micromachining, 3D printing, and hydrogels are making the foundation of this field. However, mimicking the topography of a particular tissue-relevant substrate can be achieved relatively simply with so-called template or morphology transfer techniques. Over the last 15 years, in one such research venture, we have been investigating a micro thermoforming technique as a facile tool for generating bioinspired topographies. We call them MatriGrid(®)s. In this research account, we summarize our learning outcome from this technique in terms of the influence of 3D micro morphologies on different cell cultures that we have tested in our laboratory. An integral part of this research is the evolution of unavoidable aspects such as possible label-free sensing and fluidic automatization. The development in the research field is also documented in this account.
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spelling pubmed-91380542022-05-28 MatriGrid(®) Based Biological Morphologies: Tools for 3D Cell Culturing Mai, Patrick Hampl, Jörg Baca, Martin Brauer, Dana Singh, Sukhdeep Weise, Frank Borowiec, Justyna Schmidt, André Küstner, Johanna Merle Klett, Maren Gebinoga, Michael Schroeder, Insa S. Markert, Udo R. Glahn, Felix Schumann, Berit Eckstein, Diana Schober, Andreas Bioengineering (Basel) Review Recent trends in 3D cell culturing has placed organotypic tissue models at another level. Now, not only is the microenvironment at the cynosure of this research, but rather, microscopic geometrical parameters are also decisive for mimicking a tissue model. Over the years, technologies such as micromachining, 3D printing, and hydrogels are making the foundation of this field. However, mimicking the topography of a particular tissue-relevant substrate can be achieved relatively simply with so-called template or morphology transfer techniques. Over the last 15 years, in one such research venture, we have been investigating a micro thermoforming technique as a facile tool for generating bioinspired topographies. We call them MatriGrid(®)s. In this research account, we summarize our learning outcome from this technique in terms of the influence of 3D micro morphologies on different cell cultures that we have tested in our laboratory. An integral part of this research is the evolution of unavoidable aspects such as possible label-free sensing and fluidic automatization. The development in the research field is also documented in this account. MDPI 2022-05-20 /pmc/articles/PMC9138054/ /pubmed/35621498 http://dx.doi.org/10.3390/bioengineering9050220 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 Review
Mai, Patrick
Hampl, Jörg
Baca, Martin
Brauer, Dana
Singh, Sukhdeep
Weise, Frank
Borowiec, Justyna
Schmidt, André
Küstner, Johanna Merle
Klett, Maren
Gebinoga, Michael
Schroeder, Insa S.
Markert, Udo R.
Glahn, Felix
Schumann, Berit
Eckstein, Diana
Schober, Andreas
MatriGrid(®) Based Biological Morphologies: Tools for 3D Cell Culturing
title MatriGrid(®) Based Biological Morphologies: Tools for 3D Cell Culturing
title_full MatriGrid(®) Based Biological Morphologies: Tools for 3D Cell Culturing
title_fullStr MatriGrid(®) Based Biological Morphologies: Tools for 3D Cell Culturing
title_full_unstemmed MatriGrid(®) Based Biological Morphologies: Tools for 3D Cell Culturing
title_short MatriGrid(®) Based Biological Morphologies: Tools for 3D Cell Culturing
title_sort matrigrid(®) based biological morphologies: tools for 3d cell culturing
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9138054/
https://www.ncbi.nlm.nih.gov/pubmed/35621498
http://dx.doi.org/10.3390/bioengineering9050220
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