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关于猪二尖瓣、三尖瓣、主动脉瓣和肺动脉瓣叶的弯曲特性。

On the bending properties of porcine mitral, tricuspid, aortic, and pulmonary valve leaflets.

作者信息

Brazile Bryn, Wang Bo, Wang Guangjun, Bertucci Robbin, Prabhu Raj, Patnaik Sourav S, Butler J Ryan, Claude Andrew, Brinkman-Ferguson Erin, Williams Lakiesha N, Liao Jun

机构信息

Tissue Bioengineering Laboratory, Department of Biological Engineering, Mississippi State University, MS, 39762.

Department of Clinical Sciences, College of Veterinary Medicine, Mississippi State University, MS, 39762.

出版信息

J Long Term Eff Med Implants. 2015;25(1-2):41-53. doi: 10.1615/jlongtermeffmedimplants.2015011741.

Abstract

The atrioventricular valve leaflets (mitral and tricuspid) are different from the semilunar valve leaflets (aortic and pulmonary) in layered structure, ultrastructural constitution and organization, and leaflet thickness. These differences warrant a comparative look at the bending properties of the four types of leaflets. We found that the moment-curvature relationships in atrioventricular valves were stiffer than in semilunar valves, and the moment-curvature relationships of the left-side valve leaflets were stiffer than their morphological analog of the right side. These trends were supported by the moment-curvature curves and the flexural rigidity analysis (EI value decreased from mitral, tricuspid, aortic, to pulmonary leaflets). However, after taking away the geometric effect (moment of inertia I), the instantaneous effective bending modulus E showed a reversed trend. The overall trend of flexural rigidity (EI: mitral > tricuspid > aortic > pulmonary) might be correlated with the thickness variations among the four types of leaflets (thickness: mitral > tricuspid > aortic > pulmonary). The overall trend of the instantaneous effective bending modulus (E: mitral < tricuspid < aortic < pulmonary) might be correlated to the layered fibrous ultrastructures of the four types of leaflets, of which the fibers in mitral and tricuspid leaflets were less aligned, and the fibers in aortic and pulmonary leaflets were highly aligned. We also found that, for all types of leaflets, moment-curvature relationships are stiffer in against-curvature (AC) bending than in with-curvature bending (WC), which implies that leaflets tend to flex toward their natural curvature and comply with blood flow. Lastly, we observed that the leaflets were stiffer in circumferential bending compared with radial bending, likely reflecting the physiological motion of the leaflets, i.e., more bending moment and movement were experienced in radial direction than circumferential direction.

摘要

房室瓣小叶(二尖瓣和三尖瓣)在分层结构、超微结构组成与组织以及小叶厚度方面与半月瓣小叶(主动脉瓣和肺动脉瓣)不同。这些差异使得有必要对这四种类型小叶的弯曲特性进行比较研究。我们发现,房室瓣的弯矩 - 曲率关系比半月瓣更硬,并且左侧瓣膜小叶的弯矩 - 曲率关系比右侧形态类似的瓣膜小叶更硬。这些趋势得到了弯矩 - 曲率曲线和弯曲刚度分析(EI值从二尖瓣、三尖瓣、主动脉瓣到肺动脉瓣依次降低)的支持。然而,在去除几何效应(惯性矩I)后,瞬时有效弯曲模量E呈现出相反的趋势。弯曲刚度的总体趋势(EI:二尖瓣>三尖瓣>主动脉瓣>肺动脉瓣)可能与这四种类型小叶之间的厚度变化相关(厚度:二尖瓣>三尖瓣>主动脉瓣>肺动脉瓣)。瞬时有效弯曲模量的总体趋势(E:二尖瓣<三尖瓣<主动脉瓣<肺动脉瓣)可能与这四种类型小叶的分层纤维超微结构相关,其中二尖瓣和三尖瓣小叶中的纤维排列较不整齐,而主动脉瓣和肺动脉瓣小叶中的纤维高度排列整齐。我们还发现,对于所有类型的小叶,弯矩 - 曲率关系在逆曲率(AC)弯曲中比在顺曲率(WC)弯曲中更硬,这意味着小叶倾向于朝着其自然曲率弯曲并顺应血流。最后,我们观察到小叶在周向弯曲中比径向弯曲更硬,这可能反映了小叶的生理运动,即径向方向上比周向方向经历更多的弯矩和运动。

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