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Glycosaminoglycans contribute to extracellular matrix fiber recruitment and arterial wall mechanics

机译:糖酰胺聚糖促进细胞外基质纤维招募和动脉壁力学

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Elastic and collagen fibers are well known to be the major load-bearing extracellular matrix (ECM) components of the arterial wall. Studies of the structural components and mechanics of arterial ECM generally focus on elastin and collagen fibers, and glycosaminoglycans (GAGs) are often neglected. Although GAGs represent only a small component of the vessel wall ECM, they are considerably important because of their diverse functionality and their role in pathological processes. The goal of this study was to study the mechanical and structural contributions of GAGs to the arterial wall. Biaxial tensile testing was paired with multiphoton microscopic imaging of elastic and collagen fibers in order to establish the structure-function relationships of porcine thoracic aorta before and after enzymatic GAG removal. Removal of GAGs results in an earlier transition point of the nonlinear stress-strain curves . However, stiffness was not significantly different after GAG removal treatment, indicating earlier but not absolute stiffening. Multiphoton microscopy showed that when GAGs are removed, the adventitial collagen fibers are straighter, and both elastin and collagen fibers are recruited at lower levels of strain, in agreement with the mechanical change. The amount of stress relaxation also decreased in GAG-depleted arteries . These findings suggest that the interaction between GAGs and other ECM constituents plays an important role in the mechanics of the arterial wall, and GAGs should be considered in addition to elastic and collagen fibers when studying arterial function.
机译:众所周知,弹性和胶原纤维是动脉壁的主要承重细胞外基质(ECM)组分。动脉ECM的结构组分和力学的研究通常集中在弹性蛋白和胶原纤维上,糖胺聚糖(GAG)通常被忽略。虽然GAG仅代表船舶壁ECM的一个小部件,但由于其不同的功能及其在病理过程中的作用,它们具有很大的重要性。本研究的目标是研究GAG对动脉墙的机械和结构贡献。双轴拉伸检测与弹性和胶原纤维的多光子微观成像配对,以建立酶牙龈去除之前和之后的猪胸主动脉的结构功能关系。去除GAG导致非线性应力 - 应变曲线的早期过渡点。然而,在去除处理后刚度没有显着差异,表明较早,但不是绝对加强。多光子显微镜表明,当移除GAG时,随机胶原纤维更直,均在较低水平的菌株中征集弹性蛋白和胶原纤维,同意机械变化。胶质耗尽的动脉中的应力松弛量也降低。这些发现表明,GAG和其他ECM成分之间的相互作用在动脉壁的机制中起重要作用,除了在研究动脉函数时除了弹性和胶原纤维之外还应考虑GAG。

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