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Straightening of curved pattern of collagen fibers under load controls aortic valve shape

机译:载荷作用下胶原纤维弯曲图案的矫直控制主动脉瓣形状

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摘要

The network of collagen fibers in the aortic valve leaflet is believed to play an important role in the strength and durability of the valve. However, in addition to its stress-bearing role, such a fiber network has the potential to produce functionally important shape changes in the closed valve under pressure load. We measured the average pattern of the collagen network in porcine aortic valve leaflets after staining for collagen. We then used finite element simulation to explore how this collagen pattern influences the shape of the closed valve. We observed a curved or bent pattern, with collagen fibers angled downward from the commissures toward the center of the leaflet to form a pattern that is concave toward the leaflet free edge. Simulations showed that these curved fiber trajectories straighten under pressure load, leading to functionally important changes in closed valve shape. Relative to a pattern of straight collagen fibers running parallel to the leaflet free edge, the concave pattern of curved fibers produces a closed valve with a 40% increase in central leaflet coaptation height and with decreased leaflet billow, resulting in a more physiological closed valve shape. Furthermore, simulations show that these changes in loaded leaflet shape reflect changes in leaflet curvature due to modulation of in-plane membrane stress resulting from straightening of the curved fibers. This effect appears to play an important role in normal valve function and may have important implications for the design of prosthetic and tissue engineered replacement valves.
机译:据信主动脉瓣小叶中的胶原纤维网络在瓣膜的强度和耐用性中起重要作用。然而,除了其承载压力的作用之外,这种纤维网络还具有在压力负载下在关闭的阀门中产生功能上重要的形状变化的潜力。在胶原染色后,我们测量了猪主动脉瓣小叶中胶原网络的平均模式。然后,我们使用有限元模拟来探索这种胶原蛋白模式如何影响闭合瓣膜的形状。我们观察到弯曲或弯曲的图案,胶原纤维从连合处朝小叶的中心向下倾斜,形成向小叶自由边缘凹入的图案。仿真表明,这些弯曲的纤维轨迹在压力载荷下会变直,从而导致闭阀形状在功能上产生重要变化。相对于平行于小叶自由边缘的直胶原蛋白纤维图案,弯曲纤维的凹形图案产生闭合瓣膜,使中央小叶接合高度增加40%,并且瓣叶翻滚减小,从而导致更生理的闭合瓣膜形状。此外,模拟表明,由于弯曲纤维的拉直导致的面内膜应力的调节,这些加载的小叶形状的变化反映了小叶曲率的变化。这种作用似乎在正常瓣膜功能中起重要作用,并且可能对假体和组织工程置换瓣膜的设计产生重要影响。

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