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微观结构排列的丝素蛋白海绵的合成与粘弹性表征

Synthesis and viscoelastic characterization of microstructurally aligned Silk fibroin sponges.

作者信息

Panda Debojyoti, Konar Subhajit, Bajpai Saumendra K, Arockiarajan A

机构信息

Department of Applied Mechanics, Indian Institute of Technology Madras, Chennai 600036, India.

Department of Applied Mechanics, Indian Institute of Technology Madras, Chennai 600036, India.

出版信息

J Mech Behav Biomed Mater. 2017 Jul;71:362-371. doi: 10.1016/j.jmbbm.2017.03.029. Epub 2017 Mar 28.

Abstract

Silk fibroin (SF) is a model candidate for use in tissue engineering and regenerative medicine owing to its bio-compatible mechanochemical properties. Despite numerous advances made in the fabrication of various biomimetic substrates using SF, relatively few clinical applications have been designed, primarily due to the lack of complete understanding of its constitutive properties. Here we fabricate microstructurally aligned SF sponge using the unidirectional freezing technique wherein a novel solvent-processing technique involving Acetic acid is employed, which obviates the post-treatment of the sponges to induce their water-stability. Subsequently, we quantify the anisotropic, viscoelastic response of the bulk SF sponge samples by performing a series of mechanical tests under uniaxial compression over a wide range of strain rates. Results for these uniaxial compression tests in the finite strain regime through ramp strain and ramp-relaxation loading histories applied over two orders of strain rate magnitude show that microstructural anisotropy is directly manifested in the bulk viscoelastic solid-like response. Furthermore, the experiments reveal a high degree of volume compressibility of the sponges during deformation, and also evince for their remarkable strain recovery capacity under large compressive strains during strain recovery tests. Finally, in order to predict the bulk viscoelastic material properties of the fabricated and pre-characterized SF sponges, a finite strain kinematics-based, nonlinear, continuum model developed within a thermodynamically-consistent framework in a parallel investigation, was successfully employed to capture the viscoelastic solid-like, transversely isotropic, and compressible response of the sponges macroscopically.

摘要

丝素蛋白(SF)因其生物相容性机械化学性质,是组织工程和再生医学中使用的理想候选材料。尽管在使用SF制造各种仿生基质方面取得了诸多进展,但主要由于对其组成特性缺乏全面了解,设计出的临床应用相对较少。在此,我们采用单向冷冻技术制造微观结构排列的SF海绵,其中使用了一种涉及乙酸的新型溶剂处理技术,该技术无需对海绵进行后处理以诱导其水稳定性。随后,我们通过在广泛的应变率范围内进行一系列单轴压缩下的机械测试,量化了块状SF海绵样品的各向异性、粘弹性响应。通过在两个数量级的应变率范围内应用斜坡应变和斜坡松弛加载历史,对有限应变范围内的这些单轴压缩测试结果表明,微观结构各向异性直接体现在块状粘弹性固体状响应中。此外,实验揭示了海绵在变形过程中的高度体积压缩性,并且在应变恢复测试中也证明了它们在大压缩应变下具有显著的应变恢复能力。最后,为了预测制造并预先表征的SF海绵的块状粘弹性材料特性,在一项平行研究中,在热力学一致框架内开发的基于有限应变运动学的非线性连续体模型,成功地用于宏观捕捉海绵的粘弹性固体状、横向各向同性和可压缩响应。

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