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Structural strain energy function applied to the ageing of the human aorta.

机译:结构应变能函数适用于人主动脉的衰老。

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Stiffening of the aorta with progressing age leads to decrease of aortic compliance and thus to an increase of pulse pressure amplitude. Using a strain energy function (SEF) which takes into account the composition of the arterial wall, we have studied the evolution of key structural components of the human thoracic aorta using data obtained from the literature. The SEF takes into account the wavy nature of collagen, which upon gradual inflation of the blood vessel is assumed to straighten out and become engaged in bearing load. The engagement of the individual fibers is assumed to be distributed log-logistically. The use of a SEF enables the consideration of axial stretch (lambda(z)) and residual strain (opening angle) in the biomechanical analysis. Both lambda(z) and opening angle are known to change with age. Results obtained from applying the SEF to the measurements of aortic pressure-diameter curves indicate that the changes in aortic biomechanics with progressing age are not to be sought in the elastic constants of elastin and collagen or their volume fractions of the aortic wall but moreover in alterations of the collagen mesh arrangement and the waviness of the collagen fibers. In old subjects, the collagen fiber ensemble engages in load bearing much more abruptly than in young subjects. Reasons for this change in collagen fiber dynamics may include fiber waviness remodeling or cross-linkage by advanced glycation end-products (AGE). The abruptness of collagen fiber engagement is also the model parameter that is most responsible for the decreased compliance at progressed ages.
机译:随着年龄的增长,主动脉变硬导致主动脉顺应性降低,从而导致脉压幅度增大。使用考虑到动脉壁组成的应变能函数(SEF),我们使用从文献中获得的数据研究了人胸主动脉关键结构成分的演变。 SEF考虑到了胶原的波浪状性质,假定血管逐渐膨胀,胶原就会变直并参与轴承负荷。假定各个光纤的啮合是对数逻辑分布的。 SEF的使用可以在生物力学分析中考虑轴向拉伸(λ(z))和残余应变(张角)。已知λ(z)和张角都随年龄而变化。将SEF应用于主动脉直径直径曲线的测量结果表明,在弹性蛋白和胶原蛋白的弹性常数或主动脉壁的体积分数中不寻求随着年龄的增长而改变主动脉生物力学,而是进行改变胶原网的排列和胶原纤维的波纹度。在老年受试者中,胶原纤维集合比在年轻受试者中更剧烈地参与负荷。胶原纤维动力学变化的原因可能包括纤维波纹重塑或高级糖基化终产物(AGE)造成的交联。胶原纤维接合的突然性也是模型参数,其是随着年龄增长而顺应性降低的主要原因。

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