Hybrid Ceramo-Polymeric Nanocomposite for Biomimetic Scaffolds Design and Preparation

R. Aversa, R. Petrescu, R. Sorrentino, F. Petrescu, A. Apicella
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引用次数: 85

Abstract

Biomimetics, biomechanics and tissue engineering are three multidisciplinary fields that have been contemplated in this research to attain the objective of improving prosthetic implants reliability. Since testing and mathematical methods are closely interlaced, a promising approach seemed to be the combination of in vitro and in vivo experiments with computer simulations (in silico). An innovative biomimetics and biomechanics approach and new synthetic structure providing a microenvironment, which is mechanically coherent and nutrient conducive for tissue osteoblast cell cultures used in regenerative medicine, are presented. The novel hybrid ceramo-polymeric nanocomposites are mutually investigated by Finite Element Analysis (FEA) biomimetic modelling, anatomic reconstruction, quantitative-computed-tomography characterization, computer design of tissue scaffold. The starting base materials are a class of innovative highly bioactive hybrid ceramo-polymeric materials set-up by the proponent research group that will be used as bioactive matrix for the preparation of in situ bio-mineralised tecto-structured porous nanocomposites. This study treats biomimetics, biomechanics and tissue engineering as strongly correlated multidisciplinary fields combined to design bone tissue scaffolds. The growth, maintenance and ossification of bone are fundamental and are regulated by the mechanical cues that are imposed by physical activities: This biomimetical/biomechanical approach will be pursued in designing the experimental procedures for in vitro scaffold mineralization and ossification. Bio-tissue mathematical modelling serves as a central repository to interface design, simulation and tissue fabrication. Finite element computer analyses will be used to study the role of local tissue mechanics on endochondral ossification patterns, skeletal morphology and mandible thickness distributions using single and multi-phase continuum material representations of clinical cases of patients implanted with the traditional protocols. New protocols will be hypothesises for the use of the new biologically tecto-structured hybrid materials.
陶瓷-聚合物纳米复合材料仿生支架的设计与制备
仿生学、生物力学和组织工程学是本研究中考虑的三个多学科领域,以达到提高假体植入物可靠性的目的。由于测试和数学方法紧密地交织在一起,一种有前途的方法似乎是将体外和体内实验与计算机模拟(计算机模拟)结合起来。提出了一种创新的仿生学和生物力学方法和新的合成结构,为再生医学中使用的组织成骨细胞培养提供了一个机械连贯和营养有益的微环境。采用有限元分析(FEA)、仿生建模、解剖重建、定量计算机断层扫描表征、组织支架计算机设计等方法对新型陶瓷-聚合物复合材料进行了研究。起始基础材料是一类创新的高生物活性杂化陶瓷聚合物材料,由支持者研究小组建立,将用作生物活性基质,用于原位生物矿化构造结构多孔纳米复合材料的制备。本研究将仿生学、生物力学和组织工程学作为紧密相关的多学科领域结合起来设计骨组织支架。骨的生长、维持和骨化是基本的,并受到身体活动施加的机械信号的调节:这种仿生/生物力学方法将在设计体外支架矿化和骨化的实验过程中被采用。生物组织数学建模是界面设计、仿真和组织制造的中心存储库。有限元计算机分析将用于研究局部组织力学对软骨内成骨模式、骨骼形态和下颌骨厚度分布的作用,使用传统方案植入患者的临床病例的单阶段和多相连续体材料表示。新的方案将假设使用新的生物结构混合材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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