细胞生物学
微血管
细胞骨架
间充质
胎盘
剪应力
体外
动脉发生
化学
体内
内皮
生物
胎儿
间充质干细胞
血管生成
材料科学
细胞
内分泌学
怀孕
生物化学
癌症研究
遗传学
生物技术
复合材料
作者
Marta Cherubini,Scott Erickson,Prasanna Padmanaban,Per Haberkant,Frank Stein,Violeta Beltrán-Sastre,Kristina Haase
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2023-12-22
卷期号:9 (51)
被引量:19
标识
DOI:10.1126/sciadv.adj8540
摘要
Proper placental vascularization is vital for pregnancy outcomes, but assessing it with animal models and human explants has limitations. We introduce a 3D in vitro model of human placenta terminal villi including fetal mesenchyme and vascular endothelium. By coculturing HUVEC, placental fibroblasts, and pericytes in a macrofluidic chip with a flow reservoir, we generate fully perfusable fetal microvessels. Pressure-driven flow facilitates microvessel growth and remodeling, resulting in early formation of interconnected and lasting placental-like vascular networks. Computational fluid dynamics simulations predict shear forces, which increase microtissue stiffness, decrease diffusivity, and enhance barrier function as shear stress rises. Mass spectrometry analysis reveals enhanced protein expression with flow, including matrix stability regulators, proteins associated with actin dynamics, and cytoskeleton organization. Our model provides a powerful tool for deducing complex in vivo parameters, such as shear stress on developing vascularized placental tissue, and holds promise for unraveling gestational disorders related to the vasculature.
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