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MICROVASCULAR ORIENTATION DURING ANGIOGENESIS: EFFECTS OF MECHANICAL STRETCH AND BOUNDARY CONDITIONS

机译:血管生成期间的微血管取向:机械拉伸和边界条件的影响

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Mechanical forces affect the behavior of a variety of cell types including fibroblasts, chondrocytes, osteoblasts, smooth muscle cells, and endothelial cells. In vitro cellular orientation is primarily achieved through cell-generated mechanical forces or contact guidance. Endothelial cell (EC) cords align both normal to the stretch direction as well as along pre-tensioned collagen matrices. Confluent ECs orient parallel to grooved surfaces while tractional forces generated by ECs contract the matrix aligning collagen fibers, which in turn are considered a guiding scaffold. The influence of mechanical forces and boundary conditions on the growth and proliferation of microvessels during the process of angiogenesis is unknown. A better understanding of these interactions is essential both from a basic science standpoint as well as in the engineering of artificial vascularized matrices with specific orientation of vessels and endothelial cells. The objective of this study was to examine the role of internal and external mechanical forces in microvessel orientation during angiogenesis using an in vitro model of angiogenesis.
机译:机械力影响各种细胞类型的行为,包括成纤维细胞,软骨细胞,成骨细胞,平滑肌细胞和内皮细胞。体外细胞取向主要通过细胞产生的机械力或接触引导来实现。内皮细胞(EC)帘线垂直于拉伸方向以及沿着预张紧的胶原基质对齐。与沟槽表面平行的汇合ECS定向,而ECS产生的婴儿压力结合基质对准胶原纤维,其又被认为是导向支架。机械力和边界条件对血管生成过程中微血管生长和增殖的影响是未知的。对这些相互作用的更好理解是从基础科学角度以及具有血管和内皮细胞的特定取向的人工血管化矩阵的工程中必需。本研究的目的是使用体外血管生成模型来检查血管生成期间内外机械力在微血管取向中的作用。

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