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Automated fabrication of a scalable heart-on-a-chip device by 3D printing of thermoplastic elastomer nanocomposite and hot embossing

The successful translation of organ-on-a-chip devices requires the development of an automated workflow for device fabrication, which is challenged by the need for precise deposition of multiple classes of materials in micro-meter scaled configurations. Many current heart-on-a-chip devices are produ...

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Autores principales: Wu, Qinghua, Xue, Ruikang, Zhao, Yimu, Ramsay, Kaitlyn, Wang, Erika Yan, Savoji, Houman, Veres, Teodor, Cartmell, Sarah H., Radisic, Milica
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10654006/
https://www.ncbi.nlm.nih.gov/pubmed/38024233
http://dx.doi.org/10.1016/j.bioactmat.2023.10.019
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author Wu, Qinghua
Xue, Ruikang
Zhao, Yimu
Ramsay, Kaitlyn
Wang, Erika Yan
Savoji, Houman
Veres, Teodor
Cartmell, Sarah H.
Radisic, Milica
author_facet Wu, Qinghua
Xue, Ruikang
Zhao, Yimu
Ramsay, Kaitlyn
Wang, Erika Yan
Savoji, Houman
Veres, Teodor
Cartmell, Sarah H.
Radisic, Milica
author_sort Wu, Qinghua
collection PubMed
description The successful translation of organ-on-a-chip devices requires the development of an automated workflow for device fabrication, which is challenged by the need for precise deposition of multiple classes of materials in micro-meter scaled configurations. Many current heart-on-a-chip devices are produced manually, requiring the expertise and dexterity of skilled operators. Here, we devised an automated and scalable fabrication method to engineer a Biowire II multiwell platform to generate human iPSC-derived cardiac tissues. This high-throughput heart-on-a-chip platform incorporated fluorescent nanocomposite microwires as force sensors, produced from quantum dots and thermoplastic elastomer, and 3D printed on top of a polystyrene tissue culture base patterned by hot embossing. An array of built-in carbon electrodes was embedded in a single step into the base, flanking the microwells on both sides. The facile and rapid 3D printing approach efficiently and seamlessly scaled up the Biowire II system from an 8-well chip to a 24-well and a 96-well format, resulting in an increase of platform fabrication efficiency by 17,5000–69,000% per well. The device's compatibility with long-term electrical stimulation in each well facilitated the targeted generation of mature human iPSC-derived cardiac tissues, evident through a positive force-frequency relationship, post-rest potentiation, and well-aligned sarcomeric apparatus. This system's ease of use and its capacity to gauge drug responses in matured cardiac tissue make it a powerful and reliable platform for rapid preclinical drug screening and development.
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spelling pubmed-106540062023-11-07 Automated fabrication of a scalable heart-on-a-chip device by 3D printing of thermoplastic elastomer nanocomposite and hot embossing Wu, Qinghua Xue, Ruikang Zhao, Yimu Ramsay, Kaitlyn Wang, Erika Yan Savoji, Houman Veres, Teodor Cartmell, Sarah H. Radisic, Milica Bioact Mater Article The successful translation of organ-on-a-chip devices requires the development of an automated workflow for device fabrication, which is challenged by the need for precise deposition of multiple classes of materials in micro-meter scaled configurations. Many current heart-on-a-chip devices are produced manually, requiring the expertise and dexterity of skilled operators. Here, we devised an automated and scalable fabrication method to engineer a Biowire II multiwell platform to generate human iPSC-derived cardiac tissues. This high-throughput heart-on-a-chip platform incorporated fluorescent nanocomposite microwires as force sensors, produced from quantum dots and thermoplastic elastomer, and 3D printed on top of a polystyrene tissue culture base patterned by hot embossing. An array of built-in carbon electrodes was embedded in a single step into the base, flanking the microwells on both sides. The facile and rapid 3D printing approach efficiently and seamlessly scaled up the Biowire II system from an 8-well chip to a 24-well and a 96-well format, resulting in an increase of platform fabrication efficiency by 17,5000–69,000% per well. The device's compatibility with long-term electrical stimulation in each well facilitated the targeted generation of mature human iPSC-derived cardiac tissues, evident through a positive force-frequency relationship, post-rest potentiation, and well-aligned sarcomeric apparatus. This system's ease of use and its capacity to gauge drug responses in matured cardiac tissue make it a powerful and reliable platform for rapid preclinical drug screening and development. KeAi Publishing 2023-11-07 /pmc/articles/PMC10654006/ /pubmed/38024233 http://dx.doi.org/10.1016/j.bioactmat.2023.10.019 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Wu, Qinghua
Xue, Ruikang
Zhao, Yimu
Ramsay, Kaitlyn
Wang, Erika Yan
Savoji, Houman
Veres, Teodor
Cartmell, Sarah H.
Radisic, Milica
Automated fabrication of a scalable heart-on-a-chip device by 3D printing of thermoplastic elastomer nanocomposite and hot embossing
title Automated fabrication of a scalable heart-on-a-chip device by 3D printing of thermoplastic elastomer nanocomposite and hot embossing
title_full Automated fabrication of a scalable heart-on-a-chip device by 3D printing of thermoplastic elastomer nanocomposite and hot embossing
title_fullStr Automated fabrication of a scalable heart-on-a-chip device by 3D printing of thermoplastic elastomer nanocomposite and hot embossing
title_full_unstemmed Automated fabrication of a scalable heart-on-a-chip device by 3D printing of thermoplastic elastomer nanocomposite and hot embossing
title_short Automated fabrication of a scalable heart-on-a-chip device by 3D printing of thermoplastic elastomer nanocomposite and hot embossing
title_sort automated fabrication of a scalable heart-on-a-chip device by 3d printing of thermoplastic elastomer nanocomposite and hot embossing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10654006/
https://www.ncbi.nlm.nih.gov/pubmed/38024233
http://dx.doi.org/10.1016/j.bioactmat.2023.10.019
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