An insight into the interphase concept as applied to the adhesion between inert and biologic material systems

D. Portan, G. Papanicolaou
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Abstract

In several research fields, the properties at the interphase between two materials in contact can be quantified by the degree of adhesion. Previous research indicated that a rigorous prediction of the quality of cooperation between biomaterial substrate and human component (cells/tissue) can be achieved though analytical models. In the present investigation, an established theory related to the interphase adhesion in composite materials has been used to redefine the adhesion process of human tissue to a substrate and furthermore, to analyze the type of cooperation between them. Through the present investigation it is shown that modeling-based design of biomaterials can enable the optimum feedback of the human component. Thus, the aim of the present study is to interconnect elements of material science, mechanics and biology in a common theory on the analytical modeling at the interphase between inert materials and human cells/ tissues and further on, to develop a strategy of programmed biomaterial design based on modeling output and property prediction. It has been concluded that phenomena at the interphase decide for the implant integration in the host body.In several research fields, the properties at the interphase between two materials in contact can be quantified by the degree of adhesion. Previous research indicated that a rigorous prediction of the quality of cooperation between biomaterial substrate and human component (cells/tissue) can be achieved though analytical models. In the present investigation, an established theory related to the interphase adhesion in composite materials has been used to redefine the adhesion process of human tissue to a substrate and furthermore, to analyze the type of cooperation between them. Through the present investigation it is shown that modeling-based design of biomaterials can enable the optimum feedback of the human component. Thus, the aim of the present study is to interconnect elements of material science, mechanics and biology in a common theory on the analytical modeling at the interphase between inert materials and human cells/ tissues and further on, to develop a strategy of programmed biomaterial design ...
对应用于惰性和生物材料系统之间粘附的间相概念的见解
在一些研究领域中,接触的两种材料之间的界面性能可以通过粘附程度来量化。以往的研究表明,可以通过分析模型来严格预测生物材料底物与人体成分(细胞/组织)之间的合作质量。在本研究中,已建立的关于复合材料间相粘附的理论被用来重新定义人体组织与基质的粘附过程,并进一步分析它们之间的合作类型。通过目前的研究表明,基于建模的生物材料设计可以实现人体成分的最佳反馈。因此,本研究的目的是将材料科学,力学和生物学的元素在惰性材料与人体细胞/组织之间的界面阶段的分析建模的共同理论中互连起来,并进一步发展基于建模输出和性能预测的程序化生物材料设计策略。结果表明,间期现象决定了移植物在宿主体内的整合。在一些研究领域中,接触的两种材料之间的界面性能可以通过粘附程度来量化。以往的研究表明,可以通过分析模型来严格预测生物材料底物与人体成分(细胞/组织)之间的合作质量。在本研究中,已建立的关于复合材料间相粘附的理论被用来重新定义人体组织与基质的粘附过程,并进一步分析它们之间的合作类型。通过目前的研究表明,基于建模的生物材料设计可以实现人体成分的最佳反馈。因此,本研究的目的是将材料科学,力学和生物学的元素在惰性材料与人体细胞/组织之间的界面阶段的分析建模的共同理论中相互联系,并进一步发展程序化生物材料设计策略。
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