类有机物
去细胞化
再生医学
细胞外基质
子宫内膜
自愈水凝胶
生物相容性
体内
组织工程
生物医学工程
细胞生物学
材料科学
生物
医学
干细胞
生物技术
内分泌学
高分子化学
冶金
作者
María Gómez‐Álvarez,Clara Bueno-Fernández,Adolfo Rodríguez‐Eguren,Emilio Francés‐Herrero,Marcos Agustina‐Hernández,Amparo Faus,Fernando Gisbert Roca,Cristina Martínez‐Ramos,Amparo Galán,António Pellicer,Hortensia Ferrero,Irene Cervelló
标识
DOI:10.1002/adhm.202303838
摘要
Abstract The 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.
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