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One-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3D in vitro maturation

Three-dimensional in vitro maturation (3D IVM) is a promising approach to improve IVM efficiency as it could prevent cumulus-oocyte complex (COC) flattening and preserve its structural and functional integrity. Methods reported to date have low reproducibility and validation studies are limited. In...

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Autores principales: Mastrorocco, Antonella, Cacopardo, Ludovica, Martino, Nicola Antonio, Fanelli, Diana, Camillo, Francesco, Ciani, Elena, Roelen, Bernard A. J., Ahluwalia, Arti, Dell’Aquila, Maria Elena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7485809/
https://www.ncbi.nlm.nih.gov/pubmed/32915922
http://dx.doi.org/10.1371/journal.pone.0238812
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author Mastrorocco, Antonella
Cacopardo, Ludovica
Martino, Nicola Antonio
Fanelli, Diana
Camillo, Francesco
Ciani, Elena
Roelen, Bernard A. J.
Ahluwalia, Arti
Dell’Aquila, Maria Elena
author_facet Mastrorocco, Antonella
Cacopardo, Ludovica
Martino, Nicola Antonio
Fanelli, Diana
Camillo, Francesco
Ciani, Elena
Roelen, Bernard A. J.
Ahluwalia, Arti
Dell’Aquila, Maria Elena
author_sort Mastrorocco, Antonella
collection PubMed
description Three-dimensional in vitro maturation (3D IVM) is a promising approach to improve IVM efficiency as it could prevent cumulus-oocyte complex (COC) flattening and preserve its structural and functional integrity. Methods reported to date have low reproducibility and validation studies are limited. In this study, a bioprinting based production process for generating microbeads containing a COC (COC-microbeads) was optimized and its validity tested in a large animal model (sheep). Alginate microbeads were produced and characterized for size, shape and stability under culture conditions. COC encapsulation had high efficiency and reproducibility and cumulus integrity was preserved. COC-microbeads underwent IVM, with COCs cultured in standard 2D IVM as controls. After IVM, oocytes were analyzed for nuclear chromatin configuration, bioenergetic/oxidative status and transcriptional activity of genes biomarker of mitochondrial activity (TFAM, ATP6, ATP8) and oocyte developmental competence (KHDC3, NLRP5, OOEP and TLE6). The 3D system supported oocyte nuclear maturation more efficiently than the 2D control (P<0.05). Ooplasmic mitochondrial activity and reactive oxygen species (ROS) generation ability were increased (P<0.05). Up-regulation of TFAM, ATP6 and ATP8 and down-regulation of KHDC3, NLRP5 expression were observed in 3D IVM. In conclusion, the new bioprinting method for producing COC-microbeads has high reproducibility and efficiency. Moreover, 3D IVM improves oocyte nuclear maturation and relevant parameters of oocyte cytoplasmic maturation and could be used for clinical and toxicological applications.
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spelling pubmed-74858092020-09-21 One-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3D in vitro maturation Mastrorocco, Antonella Cacopardo, Ludovica Martino, Nicola Antonio Fanelli, Diana Camillo, Francesco Ciani, Elena Roelen, Bernard A. J. Ahluwalia, Arti Dell’Aquila, Maria Elena PLoS One Research Article Three-dimensional in vitro maturation (3D IVM) is a promising approach to improve IVM efficiency as it could prevent cumulus-oocyte complex (COC) flattening and preserve its structural and functional integrity. Methods reported to date have low reproducibility and validation studies are limited. In this study, a bioprinting based production process for generating microbeads containing a COC (COC-microbeads) was optimized and its validity tested in a large animal model (sheep). Alginate microbeads were produced and characterized for size, shape and stability under culture conditions. COC encapsulation had high efficiency and reproducibility and cumulus integrity was preserved. COC-microbeads underwent IVM, with COCs cultured in standard 2D IVM as controls. After IVM, oocytes were analyzed for nuclear chromatin configuration, bioenergetic/oxidative status and transcriptional activity of genes biomarker of mitochondrial activity (TFAM, ATP6, ATP8) and oocyte developmental competence (KHDC3, NLRP5, OOEP and TLE6). The 3D system supported oocyte nuclear maturation more efficiently than the 2D control (P<0.05). Ooplasmic mitochondrial activity and reactive oxygen species (ROS) generation ability were increased (P<0.05). Up-regulation of TFAM, ATP6 and ATP8 and down-regulation of KHDC3, NLRP5 expression were observed in 3D IVM. In conclusion, the new bioprinting method for producing COC-microbeads has high reproducibility and efficiency. Moreover, 3D IVM improves oocyte nuclear maturation and relevant parameters of oocyte cytoplasmic maturation and could be used for clinical and toxicological applications. Public Library of Science 2020-09-11 /pmc/articles/PMC7485809/ /pubmed/32915922 http://dx.doi.org/10.1371/journal.pone.0238812 Text en © 2020 Mastrorocco 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Mastrorocco, Antonella
Cacopardo, Ludovica
Martino, Nicola Antonio
Fanelli, Diana
Camillo, Francesco
Ciani, Elena
Roelen, Bernard A. J.
Ahluwalia, Arti
Dell’Aquila, Maria Elena
One-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3D in vitro maturation
title One-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3D in vitro maturation
title_full One-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3D in vitro maturation
title_fullStr One-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3D in vitro maturation
title_full_unstemmed One-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3D in vitro maturation
title_short One-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3D in vitro maturation
title_sort one-step automated bioprinting-based method for cumulus-oocyte complex microencapsulation for 3d in vitro maturation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7485809/
https://www.ncbi.nlm.nih.gov/pubmed/32915922
http://dx.doi.org/10.1371/journal.pone.0238812
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