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Direct Noninvasive Measurement and Numerical Modeling of Depth-Dependent Strains in Layered Agarose Constructs

机译:分层琼脂糖构建物中深度依赖菌株的直接无创测量和数值建模

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摘要

Biomechanical factors play an important role in the growth, regulation, and maintenance of engineered biomaterials and tissues. While physical factors (e.g. applied mechanical strain) can accelerate regeneration, and knowledge of tissue properties often guide the design of custom materials with tailored functionality, the distribution of mechanical quantities (e.g. strain) throughout native and repair tissues is largely unknown. Here, we directly quantify distributions of strain using noninvasive magnetic resonance imaging (MRI) throughout layered agarose constructs, a model system for articular cartilage regeneration. Bulk mechanical testing, giving both instantaneous and equilibrium moduli, was incapable of differentiating between the layered constructs with defined amounts of 2% and 4% agarose. In contrast, MRI revealed complex distributions of strain, with strain transfer to softer (2%) agarose regions, resulting in amplified magnitudes. Comparative studies using finite element simulations and mixture (biphasic) theory confirmed strain distributions in the layered agarose. The results indicate that strain transfer to soft regions is possible in vivo as the biomaterial and tissue changes during regeneration and maturity. It is also possible to modulate locally the strain field that is applied to construct-embedded cells (e.g. chondrocytes) using stratified agarose constructs.
机译:生物力学因素在工程生物材料和组织的生长,调节和维持中起着重要作用。尽管物理因素(例如施加的机械应变)可以加速再生,并且组织特性的知识通常指导具有定制功能的定制材料的设计,但是在整个天然组织和修复组织中机械量(例如应变)的分布仍然是未知的。在这里,我们直接使用无创磁共振成像(MRI)量化整个层状琼脂糖构建体(一种关节软骨再生的模型系统)中的应变分布。给出瞬时模量和平衡模量的大块机械测试无法区分定义量为2%和4%琼脂糖的分层构造。相比之下,MRI显示应变的复杂分布,并且应变转移到较软的(2%)琼脂糖区域,从而导致幅度放大。使用有限元模拟和混合(双相)理论进行的比较研究证实了层状琼脂糖中的应变分布。结果表明,随着生物材料和组织在再生和成熟过程中发生变化,体内可能会将菌株转移到软区域。也可以使用分层的琼脂糖构建体局部调节施加于构建体嵌入细胞(例如软骨细胞)的应变场。

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