Oxygen gradients dictate angiogenesis but not barriergenesis in a 3D brain microvascular model

血管生成 氧气 生物物理学 萌芽血管生成 化学 活性氧 发芽 剪应力 细胞生物学 细胞外基质 新生血管 生物 材料科学 植物 复合材料 有机化学 癌症研究
作者
Kiet A. Tran,Abigail Baldwin‐Leclair,Brandon J. DeOre,Morgan Antisell,Peter A. Galie
出处
期刊:Journal of Cellular Physiology [Wiley]
卷期号:237 (10): 3872-3882 被引量:3
标识
DOI:10.1002/jcp.30840
摘要

Abstract A variety of biophysical properties are known to regulate angiogenic sprouting, and in vitro systems can parse the individual effects of these factors in a controlled setting. Here, a three‐dimensional brain microvascular model interrogates how variables including extracellular matrix composition, fluid shear stress, and radius of curvature affect angiogenic sprouting of cerebral endothelial cells. Tracking endothelial migration over several days reveals that application of fluid shear stress and enlarged vessel radius of curvature both attenuate sprouting. Computational modeling informed by oxygen consumption assays suggests that sprouting correlates to reduced oxygen concentration: both fluid shear stress and vessel geometry alter the local oxygen levels dictated by both ambient conditions and cellular respiration. Moreover, increasing cell density and consequently lowering the local oxygen levels yields significantly more sprouting. Further analysis reveals that the magnitude of oxygen concentration is not as important as its spatial concentration gradient: decreasing ambient oxygen concentration causes significantly less sprouting than applying an external oxygen gradient to the vessels. In contrast, barriergenesis is dictated by shear stress independent of local oxygen concentrations, suggesting that different mechanisms mediate angiogenesis and barrier formation and that angiogenic sprouting can occur without compromising the barrier. Overall, these results improve our understanding of how specific biophysical variables regulate the function and activation of cerebral vasculature, and identify spatial oxygen gradients as the driving factor of angiogenesis in the brain.

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