生物
类有机物
缺氧(环境)
川地31
细胞生物学
旁分泌信号
间充质干细胞
血管平滑肌
新生内膜
表型
体外
解剖
内科学
内分泌学
免疫学
免疫组织化学
平滑肌
受体
生物化学
氧气
基因
化学
有机化学
再狭窄
支架
医学
作者
Geórgia da Silva Feltran,Rodrigo A. da Silva,Célio Júnior da Costa Fernandes,Marcel Rodrigues Ferreira,Sérgio Alexandre Alcântara dos Santos,Luís Antônio Justulin,Liliana del Valle Sosa,Willian Fernando Zambuzzi
标识
DOI:10.1016/j.yexcr.2024.114136
摘要
Considering the importance of alternative methodologies to animal experimentation, we propose an organoid-based biological model for in vitro blood vessel generation, achieved through co-culturing endothelial and vascular smooth muscle cells (VSMCs). Initially, the organoids underwent comprehensive characterization, revealing VSMCs (α-SMA+ cells) at the periphery and endothelial cells (CD31+ cells) at the core. Additionally, ephrin B2 and ephrin B4, genes implicated in arterial and venous formation respectively, were used to validate the obtained organoid. Moreover, the data indicates exclusive HIF-1α expression in VSMCs, identified through various methodologies. Subsequently, we tested the hypothesis that the generated blood vessels have the capacity to modulate the osteogenic phenotype, demonstrating the ability of HIF-1α to promote osteogenic signals, primarily by influencing Runx2 expression. Overall, this study underscores that the methodology employed to create blood vessel organoids establishes an experimental framework capable of producing a 3D culture model of both venous and arterial endothelial tissues. This model effectively guides morphogenesis from mesenchymal stem cells through paracrine signaling, ultimately leading to an osteogenic acquisition phenotype, with the dynamic involvement of HIF-1α.
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