去细胞化
间充质干细胞
再生(生物学)
CD44细胞
移植
川地31
异种移植
细胞生物学
干细胞
病理
男科
免疫组织化学
组织工程
生物医学工程
医学
生物
细胞
内科学
遗传学
作者
Sara Bandstein,Lucía de Miguel–Gómez,Edina Sehiç,Emy Thorén,Sara López-Martínez,Irene Cervelló,Randa Akouri,Mihai Oltean,Mats Brännström,Mats Hellström
标识
DOI:10.3390/bioengineering11121268
摘要
Transplantation of decellularized uterus tissue showed promise in supporting regeneration following uterine injury in animal models, suggesting an alternative to complete uterus transplantation for uterine factor infertility treatment. However, most animal studies utilized small grafts, limiting their clinical relevance. Hence, we used larger grafts (20 × 10 mm), equivalent to nearly one uterine horn in rats, to better evaluate the bioengineering challenges associated with structural support, revascularization, and tissue regeneration. We analyzed histopathology, employed immunohistochemistry, and investigated gene expression discrepancies in growth-related proteins over four months post-transplantation in acellular grafts and those recellularized (RC) with bone marrow-derived mesenchymal stem cells (bmMSCs). RC grafts exhibited less inflammation and faster epithelialization and migration of endogenous cells into the graft compared with acellular grafts. Despite the lack of a significant difference in the density of CD31 positive blood vessels between groups, the RC group demonstrated a better organized myometrial layer and an overall faster regenerative progress. Elevated gene expression for Vegf, Cd44, and Itgb1 correlated with the enhanced tissue regeneration in this group. Elevated Tgfb expression was noted in both groups, potentially contributing to the rapid revascularization. Our findings suggest that large uterine injuries can be regenerated using decellularized tissue, with bmMSCs enhancing the endogenous repair mechanisms.
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