首页> 外文会议>ASME summer bioengineering conference;SBC2010 >Modeling Inter-Lamellar Interactions in Angle-Ply Nanofibrous Biologic Laminates for Annulus Fibrosus Tissue Engineering
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Modeling Inter-Lamellar Interactions in Angle-Ply Nanofibrous Biologic Laminates for Annulus Fibrosus Tissue Engineering

机译:角膜层纳米纤维生物层压板中层间相互作用的建模,用于纤维环组织工程

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Function of the annulus fibrosus (AF) of the intervertebral disc is predicated on a high degree of structural organization over multiple length scales. Recently, we have employed aligned electrospun scaffolds to engineer nanofibrous biologic laminates that replicate the form and function of the AF [1], Further, we determined that interlamellar shearing - a direct consequence of the +/-30° angle-ply architecture - plays an important role in reinforcing the tensile response of these materials (Fig. 1). Although we have utilized fiber-reinforced continuum models to characterize the evolving mechanics of single-lamellar AF constructs with in vitro culture [2, 3], these models are not capable of capturing the interlamellar interactions observed in bi-lamellar constructs. Indeed, continuum models of the native AF typically do not account for the organization of fiber populations into discrete, alternating planes of alignment, and so these models, too, do not account for inter-lamellar shearing interactions [4-6]. Therefore, in the present work we propose a novel constitutive model for the reinforcing role of interlamellar shearing during uniaxial extension of angle-ply biologic laminates and employ this model to evaluate the functional evolution of bilayers for AF tissue engineering.
机译:椎间盘纤维环(AF)的功能取决于多个长度范围内的高度结构化组织。最近,我们采用对齐的电纺支架来设计纳米纤维生物层压板,这些层压板可复制AF的形式和功能[1]。此外,我们确定层间剪切-+/- 30°角层结构的直接结果-发挥了作用在增强这些材料的拉伸响应中起着重要作用(图1)。尽管我们已经利用纤维增强的连续体模型来表征体外培养的单层房颤构建体的演化机理[2,3],但是这些模型无法捕获在双层房颤构建体中观察到的层间相互作用。实际上,天然AF的连续模型通常不考虑将纤维种群组织成离散的,交替的排列平面,因此这些模型也不能考虑层间剪切相互作用[4-6]。因此,在目前的工作中,我们提出了一种新的本构模型,用于角膜层生物层压板单轴延伸过程中层间剪切的增强作用,并采用该模型来评估用于AF组织工程的双层功能演变。

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