A Biomimetic Follicle‐Based Design for Engineering Reproductive Technologies

Author:

Sánchez‐Ajofrín Irene1,Andreu Carlos M.1,Galindo Josué M.1,San‐Millán Irene1,Merino Sonia1,Soler Ana Josefa2,Herrero M. Antonia1,Vázquez Ester1ORCID

Affiliation:

1. Instituto Regional de Investigación Científica Aplicada (IRICA) and Facultad de Ciencias y Tecnologías Químicas Universidad de Castilla‐La Mancha Ciudad Real 13071 Spain

2. SaBio IREC (CSIC‐UCLM‐JCCM) ETSIAMB Campus Universitario s/n Albacete 02071 Spain

Abstract

AbstractIn the field of assisted reproductive technologies, oocyte in vitro maturation (IVM) has emerged as a potential alternative to overcome the limitations associated with standard ovarian stimulation treatments. However, current IVM protocols lack standardization and yield oocytes of inferior quality compared to those matured in vivo. To address this issue, novel biomaterials like hydrogels offer distinct advantages in cell culture by providing a 3D cellular environment and facilitating easy adjustment and characterization of mechanical properties, such as hydrogel stiffness. Herein, a novel and reusable bilayer hydrogel system is presented that accurately mimics the mechanical properties of the microenvironment surrounding oocyte maturation. The system comprises an outer layer fabricated from either a 3D‐printed synthetic polymer (2‐vinyl‐4,6‐diamino‐1,3,5‐triazine, (VDT)) or a natural polymer (chitosan), along with an inner layer composed of alginate. By faithfully replicating the mechanical properties of native tissue within a 3D culture environment, this system significantly improves the quality and developmental capacity of oocytes, thus resulting in successful embryo development. Overall, this innovative system holds great potential for future medical research and applications in cell culture, thus representing a significant advancement in assisted reproductive technologies.

Funder

Junta de Comunidades de Castilla-La Mancha

Universidad de Castilla-La Mancha

HORIZON EUROPE Framework Programme

Ministerio de Ciencia e Innovación

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

Reference73 articles.

1. Fortune Business Insights In Vitro Fertilization Market Size Share & Industry Analysis 2018 https://www.fortunebusinessinsights.com/industry‐reports/assisted‐reproductive‐technology‐art‐market‐101811.

2. An update on the prevention of ovarian hyperstimulation syndrome

3. In vitromaturation of human oocytes: Its role in infertility treatment and new possibilities

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