Hybrid Endometrial‐Derived Hydrogels: Human Organoid Culture Models and In Vivo Perspectives

Author:

Gómez‐Álvarez María1ORCID,Bueno‐Fernandez Clara12ORCID,Rodríguez‐Eguren Adolfo1ORCID,Francés‐Herrero Emilio12ORCID,Agustina‐Hernández Marcos1ORCID,Faus Amparo1,Gisbert Roca Fernando3,Martínez‐Ramos Cristina34,Galán Amparo56,Pellicer Antonio7,Ferrero Hortensia1,Cervelló Irene1ORCID

Affiliation:

1. IVIRMA Global Research Alliance IVI Foundation Instituto de Investigación Sanitaria La Fe (IIS La Fe) Valencia 46026 Spain

2. Universitat de València Department of Pediatrics Obstetrics and Gynaecology Valencia 46010 Spain

3. Universitat Politècnica de València Centre for Biomaterials and Tissue Engineering Valencia 46022 Spain

4. Unitat Predepartamental de Medicina Universitat Jaume I Castellón de la Plana 12071 Spain

5. Laboratory of Neuroendocrinology Prince Felipe Research Center (CIPF) Valencia 46012 Spain

6. CIBER de Diabetes y Enfermedades Metabólicas Asociadas (CIBERDEM) Instituto de Salud Carlos III Madrid 28029 Spain

7. IVIRMA Global Research Alliance IVIRMA Rome Roma 00197 Italy

Abstract

AbstractThe endometrium plays a vital role in fertility, providing a receptive environment for embryo implantation and development. Understanding the endometrial physiology is essential for developing new strategies to improve reproductive healthcare. Human endometrial organoids (hEOs) are emerging as powerful models for translational research and personalized medicine. However, most hEOs are cultured in a 3D microenvironment that significantly differs from the human endometrium, limiting their applicability in bioengineering. This study presents a hybrid endometrial‐derived hydrogel that combines the rigidity of PuraMatrix (PM) with the natural scaffold components and interactions of a porcine decellularized endometrial extracellular matrix (EndoECM) hydrogel. This hydrogel provides outstanding support for hEO culture, enhances hEO differentiation efficiency due to its biochemical similarity with the native tissue, exhibits superior in vivo stability, and demonstrates xenogeneic biocompatibility in mice over a 2‐week period. Taken together, these attributes position this hybrid endometrial‐derived hydrogel as a promising biomaterial for regenerative treatments in reproductive medicine.

Funder

Universitat Politècnica de València

Conselleria de Cultura, Educación y Ciencia, Generalitat Valenciana

Ministerio de Universidades

European Social Fund

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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