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Magnetically Bioprinted Human Myometrial 3D Cell Rings as A Model for Uterine Contractility

Deregulation in uterine contractility can cause common pathological disorders of the female reproductive system, including preterm labor, infertility, inappropriate implantation, and irregular menstrual cycle. A better understanding of human myometrium contractility is essential to designing and tes...

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Autores principales: Souza, Glauco R., Tseng, Hubert, Gage, Jacob A., Mani, Arunmani, Desai, Pujan, Leonard, Fransisca, Liao, Angela, Longo, Monica, Refuerzo, Jerrie S., Godin, Biana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5412269/
https://www.ncbi.nlm.nih.gov/pubmed/28333087
http://dx.doi.org/10.3390/ijms18040683
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author Souza, Glauco R.
Tseng, Hubert
Gage, Jacob A.
Mani, Arunmani
Desai, Pujan
Leonard, Fransisca
Liao, Angela
Longo, Monica
Refuerzo, Jerrie S.
Godin, Biana
author_facet Souza, Glauco R.
Tseng, Hubert
Gage, Jacob A.
Mani, Arunmani
Desai, Pujan
Leonard, Fransisca
Liao, Angela
Longo, Monica
Refuerzo, Jerrie S.
Godin, Biana
author_sort Souza, Glauco R.
collection PubMed
description Deregulation in uterine contractility can cause common pathological disorders of the female reproductive system, including preterm labor, infertility, inappropriate implantation, and irregular menstrual cycle. A better understanding of human myometrium contractility is essential to designing and testing interventions for these important clinical problems. Robust studies on the physiology of human uterine contractions require in vitro models, utilizing a human source. Importantly, uterine contractility is a three-dimensionally (3D)-coordinated phenomenon and should be studied in a 3D environment. Here, we propose and assess for the first time a 3D in vitro model for the evaluation of human uterine contractility. Magnetic 3D bioprinting is applied to pattern human myometrium cells into rings, which are then monitored for contractility over time and as a function of various clinically relevant agents. Commercially available and patient-derived myometrium cells were magnetically bioprinted into rings in 384-well formats for throughput uterine contractility analysis. The bioprinted uterine rings from various cell origins and patients show different patterns of contractility and respond differently to clinically relevant uterine contractility inhibitors, indomethacin and nifedipine. We believe that the novel system will serve as a useful tool to evaluate the physiology of human parturition while enabling high-throughput testing of multiple agents and conditions.
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spelling pubmed-54122692017-05-05 Magnetically Bioprinted Human Myometrial 3D Cell Rings as A Model for Uterine Contractility Souza, Glauco R. Tseng, Hubert Gage, Jacob A. Mani, Arunmani Desai, Pujan Leonard, Fransisca Liao, Angela Longo, Monica Refuerzo, Jerrie S. Godin, Biana Int J Mol Sci Article Deregulation in uterine contractility can cause common pathological disorders of the female reproductive system, including preterm labor, infertility, inappropriate implantation, and irregular menstrual cycle. A better understanding of human myometrium contractility is essential to designing and testing interventions for these important clinical problems. Robust studies on the physiology of human uterine contractions require in vitro models, utilizing a human source. Importantly, uterine contractility is a three-dimensionally (3D)-coordinated phenomenon and should be studied in a 3D environment. Here, we propose and assess for the first time a 3D in vitro model for the evaluation of human uterine contractility. Magnetic 3D bioprinting is applied to pattern human myometrium cells into rings, which are then monitored for contractility over time and as a function of various clinically relevant agents. Commercially available and patient-derived myometrium cells were magnetically bioprinted into rings in 384-well formats for throughput uterine contractility analysis. The bioprinted uterine rings from various cell origins and patients show different patterns of contractility and respond differently to clinically relevant uterine contractility inhibitors, indomethacin and nifedipine. We believe that the novel system will serve as a useful tool to evaluate the physiology of human parturition while enabling high-throughput testing of multiple agents and conditions. MDPI 2017-03-23 /pmc/articles/PMC5412269/ /pubmed/28333087 http://dx.doi.org/10.3390/ijms18040683 Text en © 2017 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Souza, Glauco R.
Tseng, Hubert
Gage, Jacob A.
Mani, Arunmani
Desai, Pujan
Leonard, Fransisca
Liao, Angela
Longo, Monica
Refuerzo, Jerrie S.
Godin, Biana
Magnetically Bioprinted Human Myometrial 3D Cell Rings as A Model for Uterine Contractility
title Magnetically Bioprinted Human Myometrial 3D Cell Rings as A Model for Uterine Contractility
title_full Magnetically Bioprinted Human Myometrial 3D Cell Rings as A Model for Uterine Contractility
title_fullStr Magnetically Bioprinted Human Myometrial 3D Cell Rings as A Model for Uterine Contractility
title_full_unstemmed Magnetically Bioprinted Human Myometrial 3D Cell Rings as A Model for Uterine Contractility
title_short Magnetically Bioprinted Human Myometrial 3D Cell Rings as A Model for Uterine Contractility
title_sort magnetically bioprinted human myometrial 3d cell rings as a model for uterine contractility
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5412269/
https://www.ncbi.nlm.nih.gov/pubmed/28333087
http://dx.doi.org/10.3390/ijms18040683
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