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Bioengineering Approaches to Improve In Vitro Performance of Prepubertal Lamb Oocytes

Juvenile in vitro embryo technology (JIVET) provides exciting opportunities in animal reproduction by reducing the generation intervals. Prepubertal oocytes are also relevant models for studies on oncofertility. However, current JIVET efficiency is still unpredictable, and further improvements are n...

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Autores principales: Mastrorocco, Antonella, Cacopardo, Ludovica, Lamanna, Daniela, Temerario, Letizia, Brunetti, Giacomina, Carluccio, Augusto, Robbe, Domenico, Dell’Aquila, Maria Elena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8230371/
https://www.ncbi.nlm.nih.gov/pubmed/34200771
http://dx.doi.org/10.3390/cells10061458
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author Mastrorocco, Antonella
Cacopardo, Ludovica
Lamanna, Daniela
Temerario, Letizia
Brunetti, Giacomina
Carluccio, Augusto
Robbe, Domenico
Dell’Aquila, Maria Elena
author_facet Mastrorocco, Antonella
Cacopardo, Ludovica
Lamanna, Daniela
Temerario, Letizia
Brunetti, Giacomina
Carluccio, Augusto
Robbe, Domenico
Dell’Aquila, Maria Elena
author_sort Mastrorocco, Antonella
collection PubMed
description Juvenile in vitro embryo technology (JIVET) provides exciting opportunities in animal reproduction by reducing the generation intervals. Prepubertal oocytes are also relevant models for studies on oncofertility. However, current JIVET efficiency is still unpredictable, and further improvements are needed in order for it to be used on a large-scale level. This study applied bioengineering approaches to recreate: (1) the three-dimensional (3D) structure of the cumulus–oocyte complex (COC), by constructing—via bioprinting technologies—alginate-based microbeads (COC-microbeads) for 3D in vitro maturation (3D-IVM); (2) dynamic IVM conditions, by culturing the COC in a millifluidic bioreactor; and (3) an artificial follicular wall with basal membrane, by adding granulosa cells (GCs) and type I collagen (CI) during bioprinting. The results show that oocyte nuclear and cytoplasmic maturation, as well as blastocyst quality, were improved after 3D-IVM compared to 2D controls. The dynamic 3D-IVM did not enhance oocyte maturation, but it improved oocyte bioenergetics compared with static 3D-IVM. The computational model showed higher oxygen levels in the bioreactor with respect to the static well. Microbead enrichment with GCs and CI improved oocyte maturation and bioenergetics. In conclusion, this study demonstrated that bioengineering approaches that mimic the physiological follicle structure could be valuable tools to improve IVM and JIVET.
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spelling pubmed-82303712021-06-26 Bioengineering Approaches to Improve In Vitro Performance of Prepubertal Lamb Oocytes Mastrorocco, Antonella Cacopardo, Ludovica Lamanna, Daniela Temerario, Letizia Brunetti, Giacomina Carluccio, Augusto Robbe, Domenico Dell’Aquila, Maria Elena Cells Article Juvenile in vitro embryo technology (JIVET) provides exciting opportunities in animal reproduction by reducing the generation intervals. Prepubertal oocytes are also relevant models for studies on oncofertility. However, current JIVET efficiency is still unpredictable, and further improvements are needed in order for it to be used on a large-scale level. This study applied bioengineering approaches to recreate: (1) the three-dimensional (3D) structure of the cumulus–oocyte complex (COC), by constructing—via bioprinting technologies—alginate-based microbeads (COC-microbeads) for 3D in vitro maturation (3D-IVM); (2) dynamic IVM conditions, by culturing the COC in a millifluidic bioreactor; and (3) an artificial follicular wall with basal membrane, by adding granulosa cells (GCs) and type I collagen (CI) during bioprinting. The results show that oocyte nuclear and cytoplasmic maturation, as well as blastocyst quality, were improved after 3D-IVM compared to 2D controls. The dynamic 3D-IVM did not enhance oocyte maturation, but it improved oocyte bioenergetics compared with static 3D-IVM. The computational model showed higher oxygen levels in the bioreactor with respect to the static well. Microbead enrichment with GCs and CI improved oocyte maturation and bioenergetics. In conclusion, this study demonstrated that bioengineering approaches that mimic the physiological follicle structure could be valuable tools to improve IVM and JIVET. MDPI 2021-06-10 /pmc/articles/PMC8230371/ /pubmed/34200771 http://dx.doi.org/10.3390/cells10061458 Text en © 2021 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 Article
Mastrorocco, Antonella
Cacopardo, Ludovica
Lamanna, Daniela
Temerario, Letizia
Brunetti, Giacomina
Carluccio, Augusto
Robbe, Domenico
Dell’Aquila, Maria Elena
Bioengineering Approaches to Improve In Vitro Performance of Prepubertal Lamb Oocytes
title Bioengineering Approaches to Improve In Vitro Performance of Prepubertal Lamb Oocytes
title_full Bioengineering Approaches to Improve In Vitro Performance of Prepubertal Lamb Oocytes
title_fullStr Bioengineering Approaches to Improve In Vitro Performance of Prepubertal Lamb Oocytes
title_full_unstemmed Bioengineering Approaches to Improve In Vitro Performance of Prepubertal Lamb Oocytes
title_short Bioengineering Approaches to Improve In Vitro Performance of Prepubertal Lamb Oocytes
title_sort bioengineering approaches to improve in vitro performance of prepubertal lamb oocytes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8230371/
https://www.ncbi.nlm.nih.gov/pubmed/34200771
http://dx.doi.org/10.3390/cells10061458
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