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Collagen Matrix Remodeling in Stented Pulmonary Arteries after Transapical Heart Valve Replacement

机译:经皮心瓣置换后叉杆菌重塑胶原蛋白质重塑

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The use of valved stents for minimally invasive replacement of semilunar heart valves is expected to change the extracellular matrix and mechanical function of the native artery and may thus impair long-term functionality of the implant. Here we investigate the impact of the stent on matrix remodeling of the pulmonary artery in a sheep model, focusing on matrix composition and collagen (re)orientation of the host tissue. Ovine native pulmonary arteries were harvested 8 (n = 2), 16 (n = 4) and 24 (n = 2) weeks after transapical implantation of self-expandable stented heart valves. Second harmonic generation (SHG) microscopy was used to assess the collagen (re)orientation of fresh tissue samples. The collagen and elastin content was quantified using biochemical assays. SHG microscopy revealed regional differences in collagen organization in all explants. In the adventitial layer of the arterial wall far distal to the stent (considered as the control tissue), we observed wavy collagen fibers oriented in the circumferential direction. These circumferential fibers were more straightened in the adventitial layer located behind the stent. On the luminal side of the wall behind the stent, collagen fibers were aligned along the stent struts and randomly oriented between the struts. Immediately distal to the stent, however, fibers on both the luminal and the adventitial side of the wall were oriented in the axial direction, demonstrating the stent impact on the collagen structure of surrounding arterial tissues. Collagen orientation patterns did not change with implantation time, and biochemical analyses showed no changes in the trend of collagen and elastin content with implantation time or location of the vascular wall. We hypothesize that the collagen fibers on the adventitial side of the arterial wall and behind the stent straighten in response to the arterial stretch caused by oversizing of the stent. However, the collagen organization on the luminal side suggests that stent-induced remodeling is dominatedby Contact guidance.
机译:预期使用阀门的侵入性更换半不弹性的心脏瓣膜的侵入性替代,以改变天然动脉的细胞外基质和机械功能,因此可能损害植入物的长期功能。在这里,我们研究支架对绵羊模型中肺动脉的基质重塑的影响,专注于宿主组织的基质组合物和胶原(RE)取向。在分流植入自膨胀支架的心脏瓣膜的分娩后,收获8(n = 2),16(n = 4)和24周(n = 2)周的绵羊天然肺动脉。二次谐波产生(SHG)显微镜用于评估新鲜组织样品的胶原(RE)取向。使用生物化学测定量化胶原蛋白和弹性蛋白含量。 SHG显微镜揭示了所有外植体中胶原蛋白组织的区域差异。在远端到支架的动脉壁的患者层(被认为是对照组织)中,我们观察到在圆周方向上取向的波状胶原纤维。在位于支架后面的患过膜层中,这些圆周纤维更矫动。在支架后面的墙壁的腔侧,胶原纤维沿支架支柱对齐并随机取向在支柱之间。然而,紧接到支架的远端,壁的腔和壁的椎间侧上的纤维在轴向方向上取向,证明了对周围动脉组织的胶原结构的支架撞击。胶原蛋白定向模式与植入时间没有改变,生化分析显示胶原蛋白和弹性蛋白含量的趋势和血管壁的位置没有变化。我们假设胶原纤维在动脉壁的患者身上和支架后面响应于由支架的超大引起的动脉延伸而伸直。然而,腔胶原蛋白组织表明支架引起的重塑是主导的联系引导。

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