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Degradation modeling of degradable copolymers for biomimetic scaffolds

机译:用于仿生支架可降解共聚物的降解建模

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Biomimetic scaffolds provide a suitable growth environment for tissue engineering and demonstrate good potential for application in biomedical fields. Different-sized copolymerized biomimetic scaffolds degrade differently, and the degradation rate is affected by the copolymerization ratio. The study of the degradation property is the foundational research necessary for realizing individualized biomimetic scaffold design. The degradation performance of polyesters with different copolymerization ratios has been widely reported; however, the modeling of this performance has been rarely reported. In this research, the degradation of copolymers was studied with multi-scale modeling, in which the copolymers were dispersed in a cellular manner, the chain break time was simulated, and the chain selection was based on the Monte Carlo (MC) algorithm. The probability model of the copolymer’s chain break position was established as a “roulette” model, whose probability values were estimated by the calculation of the potential energy difference at different chain break positions by molecular dynamics that determined the position of chain shear, thereby fully realizing the simulation of the chain micro-break process. The diffusion of the oligomers was then calculated using the macro diffusion equation, and the degradation process of the copolymer was simulated by three-scale coupling calculations. The calculation results were in good agreement with the experimental data, demonstrating the effectiveness of the proposed method.
机译:仿生支架为组织工程提供合适的生长环境,并表现出在生物医学领域的应用良好潜力。不同尺寸的共聚仿生支架不同地降解,降解速率受共聚比的影响。降解特性的研究是实现个性化仿生脚手架设计所必需的基础研究。广泛报道了具有不同共聚比的聚酯的降解性能;但是,很少报道这种性能的建模。在该研究中,利用多尺度建模研究了共聚物的降解,其中将共聚物以细胞方式分散,模拟链断断裂时间,并且链选择基于蒙特卡罗(MC)算法。共聚物链断位置的概率模型被建立为“轮盘赌”模型,其概率值通过确定链剪切位置的分子动力学计算不同链断位置的势能差来估计概率值,从而充分实现链微断析仿真。然后使用宏扩散方程计算低聚物的扩散,通过三级偶联计算模拟共聚物的降解过程。计算结果与实验数据吻合良好,证明了该方法的有效性。

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