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生物可吸收多孔脱细胞血管移植物的降解和侵蚀机制:一项研究。

Degradation and erosion mechanisms of bioresorbable porous acellular vascular grafts: an investigation.

作者信息

Gade Piyusha S, Lee Keewon, Pfaff Blaise N, Wang Yadong, Robertson Anne M

机构信息

Department of Bioengineering, University of Pittsburgh, PA, USA.

Department of Chemical Engineering, Pennsylvania State University, PA, USA.

出版信息

J R Soc Interface. 2017 Jul;14(132). doi: 10.1098/rsif.2017.0102.

Abstract

A fundamental mechanism of tissue regeneration from biodegradable synthetic acellular vascular grafts is the effective interplay between graft degradation, erosion and the production of extracellular matrix. In order to understand this crucial process of graft erosion and degradation, we conducted an investigation of grafts ( = 4 at days 1, 4, 7, 10 each) exposed to enzymatic degradation. Herein, we provide constitutive relationships for mass loss and mechanical properties based on much-needed experimental data. Furthermore, we formulate a mathematical model to provide a physics-based framework for understanding graft erosion. A novel finding is that despite their porous nature, grafts lost mass exponentially via surface erosion demonstrating a 20% reduction in outer diameter and no significant change in apparent density. A diffusion based, concentration gradient-driven mechanistic model of mass loss through surface erosion was introduced which can be extended to an setting through the use of two degradation parameters. Furthermore, notably, mechanical properties of degrading grafts did not scale with mass loss. Thus, we introduced a damage function scaling a neo-Hookean model to describe mechanical properties of the degrading graft; a refinement to existing mass-dependent growth and remodelling (G&R) models. This framework can be used to improve accuracy of well-established G&R theories in biomechanics; tools that predict evolving structure-function relationships of neotissues and guide graft design.

摘要

可生物降解合成脱细胞血管移植物组织再生的一个基本机制是移植物降解、侵蚀与细胞外基质产生之间的有效相互作用。为了理解移植物侵蚀和降解这一关键过程,我们对暴露于酶解降解的移植物(第1、4、7、10天各n = 4)进行了研究。在此,我们基于急需的实验数据提供了质量损失和力学性能的本构关系。此外,我们建立了一个数学模型,以提供一个基于物理的框架来理解移植物侵蚀。一个新发现是,尽管移植物具有多孔性质,但通过表面侵蚀质量呈指数级损失,外径减小了20%,表观密度无显著变化。引入了一个基于扩散、由浓度梯度驱动的表面侵蚀质量损失机理模型,通过使用两个降解参数可将其扩展到三维情况。此外,值得注意的是,降解移植物的力学性能与质量损失不成比例。因此,我们引入了一个损伤函数来缩放新胡克模型,以描述降解移植物的力学性能;这是对现有的质量依赖生长和重塑(G&R)模型的一种改进。该框架可用于提高生物力学中成熟的G&R理论的准确性;这些理论是预测新生组织结构 - 功能关系演变并指导移植物设计的工具。

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