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生物可吸收血管假体愈合过程中跨壁应力分布的建模

Modeling the transmural stress distribution during healing of bioresorbable vascular prostheses.

作者信息

Vorp D A, Raghavan M L, Borovetz H S, Greisler H P, Webster M W

机构信息

Department of Surgery, University of Pittsburgh, PA 15213, USA.

出版信息

Ann Biomed Eng. 1995 Mar-Apr;23(2):178-88. doi: 10.1007/BF02368324.

Abstract

Little attention has been given to the stresses within the wall of bioresorbable vascular prostheses and how they might affect the resorption process. We modeled the graft "complex" (inner tissue capsule, residual graft, and outer tissue capsule) as a three-layered compound tube under internal pressure. Using this biomechanical model, we studied the effects of alterations in the geometry (i.e., radius and thickness) and mechanical properties of each stratum on the overall transmural stress distribution. Hypothetical simulations were performed to investigate the possible sequence of and alterations in the radial and circumferential stresses during the resorption process. Our results suggest that early in the resorption phase, the inner tissue capsule is subjected to compressive hoop stresses and concentrated, large-magnitude compressive radial stresses. This distribution gives way to the more typical distribution for a thick-walled tube when equilibration (i.e., complete resorption) is approached. The prediction of the compressive stresses in the pseudo-intima during early resorption parallels findings of an elevated mitotic index in that region at that time. This leads to a new hypothesis, namely, that compressive stresses, both in-plane and out-of-plane with respect to the regenerated vascular cells, participate in the resorption process of bioresorbable vascular grafts by modulating elevated cellular proliferative activity and may play an important role in other aspects of vascular cell biology. Results of recent experimentation support this hypothesis.

摘要

生物可吸收血管移植物壁内的应力以及这些应力如何影响吸收过程一直未受到太多关注。我们将移植物“复合体”(内部组织囊、残余移植物和外部组织囊)模拟为承受内压的三层复合管。利用这个生物力学模型,我们研究了各层几何形状(即半径和厚度)和力学性能的改变对整体跨壁应力分布的影响。进行了假设模拟,以研究吸收过程中径向和周向应力的可能顺序及变化。我们的结果表明,在吸收阶段早期,内部组织囊承受压缩环向应力和集中的、大幅值的压缩径向应力。当接近平衡状态(即完全吸收)时,这种分布让位于厚壁管更典型的分布。早期吸收过程中假内膜内压缩应力的预测与该区域此时有升高的有丝分裂指数的发现一致。这引出了一个新的假设,即相对于再生血管细胞,平面内和平面外的压缩应力通过调节升高的细胞增殖活性参与生物可吸收血管移植物的吸收过程,并且可能在血管细胞生物学的其他方面发挥重要作用。近期实验结果支持了这一假设。

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