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Digital Microfluidic Dynamic Culture of Mammalian Embryos on an Electrowetting on Dielectric (EWOD) Chip

Current human fertilization in vitro (IVF) bypasses the female oviduct and manually inseminates, fertilizes and cultivates embryos in a static microdrop containing appropriate chemical compounds. A microfluidic microchannel system for IVF is considered to provide an improved in-vivo-mimicking enviro...

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Autores principales: Huang, Hong-Yuan, Shen, Hsien-Hua, Tien, Chang-Hung, Li, Chin-Jung, Fan, Shih-Kang, Liu, Cheng-Hsien, Hsu, Wen-Syang, Yao, Da-Jeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4416819/
https://www.ncbi.nlm.nih.gov/pubmed/25933003
http://dx.doi.org/10.1371/journal.pone.0124196
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author Huang, Hong-Yuan
Shen, Hsien-Hua
Tien, Chang-Hung
Li, Chin-Jung
Fan, Shih-Kang
Liu, Cheng-Hsien
Hsu, Wen-Syang
Yao, Da-Jeng
author_facet Huang, Hong-Yuan
Shen, Hsien-Hua
Tien, Chang-Hung
Li, Chin-Jung
Fan, Shih-Kang
Liu, Cheng-Hsien
Hsu, Wen-Syang
Yao, Da-Jeng
author_sort Huang, Hong-Yuan
collection PubMed
description Current human fertilization in vitro (IVF) bypasses the female oviduct and manually inseminates, fertilizes and cultivates embryos in a static microdrop containing appropriate chemical compounds. A microfluidic microchannel system for IVF is considered to provide an improved in-vivo-mimicking environment to enhance the development in a culture system for an embryo before implantation. We demonstrate a novel digitalized microfluidic device powered with electrowetting on a dielectric (EWOD) to culture an embryo in vitro in a single droplet in a microfluidic environment to mimic the environment in vivo for development of the embryo and to culture the embryos with good development and live births. Our results show that the dynamic culture powered with EWOD can manipulate a single droplet containing one mouse embryo and culture to the blastocyst stage. The rate of embryo cleavage to a hatching blastocyst with a dynamic culture is significantly greater than that with a traditional static culture (p<0.05). The EWOD chip enhances the culture of mouse embryos in a dynamic environment. To test the reproductive outcome of the embryos collected from an EWOD chip as a culture system, we transferred embryos to pseudo-pregnant female mice and produced live births. These results demonstrate that an EWOD-based microfluidic device is capable of culturing mammalian embryos in a microfluidic biological manner, presaging future clinical application.
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spelling pubmed-44168192015-05-07 Digital Microfluidic Dynamic Culture of Mammalian Embryos on an Electrowetting on Dielectric (EWOD) Chip Huang, Hong-Yuan Shen, Hsien-Hua Tien, Chang-Hung Li, Chin-Jung Fan, Shih-Kang Liu, Cheng-Hsien Hsu, Wen-Syang Yao, Da-Jeng PLoS One Research Article Current human fertilization in vitro (IVF) bypasses the female oviduct and manually inseminates, fertilizes and cultivates embryos in a static microdrop containing appropriate chemical compounds. A microfluidic microchannel system for IVF is considered to provide an improved in-vivo-mimicking environment to enhance the development in a culture system for an embryo before implantation. We demonstrate a novel digitalized microfluidic device powered with electrowetting on a dielectric (EWOD) to culture an embryo in vitro in a single droplet in a microfluidic environment to mimic the environment in vivo for development of the embryo and to culture the embryos with good development and live births. Our results show that the dynamic culture powered with EWOD can manipulate a single droplet containing one mouse embryo and culture to the blastocyst stage. The rate of embryo cleavage to a hatching blastocyst with a dynamic culture is significantly greater than that with a traditional static culture (p<0.05). The EWOD chip enhances the culture of mouse embryos in a dynamic environment. To test the reproductive outcome of the embryos collected from an EWOD chip as a culture system, we transferred embryos to pseudo-pregnant female mice and produced live births. These results demonstrate that an EWOD-based microfluidic device is capable of culturing mammalian embryos in a microfluidic biological manner, presaging future clinical application. Public Library of Science 2015-05-01 /pmc/articles/PMC4416819/ /pubmed/25933003 http://dx.doi.org/10.1371/journal.pone.0124196 Text en © 2015 Huang et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Huang, Hong-Yuan
Shen, Hsien-Hua
Tien, Chang-Hung
Li, Chin-Jung
Fan, Shih-Kang
Liu, Cheng-Hsien
Hsu, Wen-Syang
Yao, Da-Jeng
Digital Microfluidic Dynamic Culture of Mammalian Embryos on an Electrowetting on Dielectric (EWOD) Chip
title Digital Microfluidic Dynamic Culture of Mammalian Embryos on an Electrowetting on Dielectric (EWOD) Chip
title_full Digital Microfluidic Dynamic Culture of Mammalian Embryos on an Electrowetting on Dielectric (EWOD) Chip
title_fullStr Digital Microfluidic Dynamic Culture of Mammalian Embryos on an Electrowetting on Dielectric (EWOD) Chip
title_full_unstemmed Digital Microfluidic Dynamic Culture of Mammalian Embryos on an Electrowetting on Dielectric (EWOD) Chip
title_short Digital Microfluidic Dynamic Culture of Mammalian Embryos on an Electrowetting on Dielectric (EWOD) Chip
title_sort digital microfluidic dynamic culture of mammalian embryos on an electrowetting on dielectric (ewod) chip
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4416819/
https://www.ncbi.nlm.nih.gov/pubmed/25933003
http://dx.doi.org/10.1371/journal.pone.0124196
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