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A Novel Multiscale Mathematical Model for Building Bone Substitute Materials for Children

机译:一种新型的建立儿童骨骼替代材料的多尺度数学模型

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Bone is an engineering marvel that achieves a unique combination of stiffness and toughness exceeding that of synthesized materials. In orthopedics, we are currently challenged for the child population that needs a less stiff but a tougher bone substitute than adults. Recent evidence suggests that the relationship between inter-molecular connections that involve the two main bone building blocks, TropoCollagen molecules (TC) and carbonated Hydroxyapatite (cAp), and bone macroscopic mechanical properties, stiffness and toughness, are key to building bone substitute materials for children. The goal of our study is to establish how inter-molecular connections that occur during bone mineralization are related to macroscopic mechanical properties in child bones. Our aim is to link the biological alterations of the TC-cAp self assembly process happening during bone mineralization to the bone macroscopic mechanical properties’ alterations during aging. To do so, we have developed a multiscale mathematical model that includes collagen cross links (TC–TC interface) from experimental studies of bone samples to forecast bone macroscopic mechanical properties. Our results support that the Young’s modulus cannot be a linear parameter if we want to solve our system. In relation to bone substitute material with innovative properties for children, our results propose values of several biological parameters, such as the number of crystals and their size, and collagen crosslink maturity for the desired bone mechanical competence. Our novel mathematical model combines mineralization and macroscopic mechanical behavior of bone and is a step forward in building mechanically customized biomimetic bone grafts that would fit children’s orthopedic needs.
机译:骨头是一种工程奇迹,其硬度和韧性的独特组合超过了合成材料。在骨科领域,我们目前面临的挑战是,与成年人相比,儿童人群需要的僵硬程度不高但骨骼强度更高。最近的证据表明,涉及两个主要骨骼结构单元TropoCollagen分子(TC)和碳酸羟基磷灰石(cAp)的分子间连接与骨骼的宏观力学性能,刚度和韧性之间的关系,是构建用于骨骼替代材料的关键孩子们。我们研究的目的是确定骨骼矿化过程中发生的分子间连接与儿童骨骼的宏观机械性能之间的关系。我们的目标是将骨骼矿化过程中发生的TC-cAp自组装过程的生物学变化与衰老过程中骨骼宏观力学性能的变化联系起来。为此,我们已经开发了一种多尺度数学模型,其中包括从骨骼样品的实验研究到预测骨骼宏观力学性能的胶原蛋白交联(TC-TC接口)。我们的结果表明,如果我们要求解系统,则杨氏模量不能为线性参数。关于具有儿童创新特性的骨替代材料,我们的结果提出了一些生物学参数的值,例如晶体的数量及其大小以及胶原蛋白交联的成熟度,以达到所需的骨骼机械能力。我们新颖的数学模型结合了矿化作用和骨骼的宏观力学行为,是在构建可满足儿童整形外科需求的机械定制仿生骨移植方面迈出的一步。

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