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一种全血血栓模拟物:简单剪切下的本构行为。

A whole blood thrombus mimic: Constitutive behavior under simple shear.

作者信息

Sugerman Gabriella P, Kakaletsis Sotirios, Thakkar Parin, Chokshi Armaan, Parekh Sapun H, Rausch Manuel K

机构信息

University of Texas at Austin, Department of Biomedical Engineering, 107 W Dean Keeton St, Austin, TX, 78712, USA.

University of Texas at Austin, Department of Aerospace Engineering & Engineering Mechanics, 2617 Wichita St, Austin, TX, 78712, USA.

出版信息

J Mech Behav Biomed Mater. 2021 Mar;115:104216. doi: 10.1016/j.jmbbm.2020.104216. Epub 2020 Dec 15.

Abstract

Deep vein thrombosis and pulmonary embolism affect 300,000-600,000 patients each year in the US. To better understand the highly mechanical pathophysiology of pulmonary embolism, we set out to develop an in-vitro thrombus mimic and to test this mimic under large deformation simple shear. In addition to reporting on the mechanics of our mimics under simple shear, we explore the sensitivity of their mechanics to coagulation conditions and blood storage time, and compare three hyperelastic material models for their ability to fit our data. We found that thrombus mimics made from whole blood demonstrate strain-stiffening, a negative Poynting effect, and hysteresis when tested quasi-statically to 50% strain under simple shear. Additionally, we found that the stiffness of these mimics does not significantly vary with coagulation conditions or blood storage times. Of the three hyperelastic constitutive models that we tested, the Ogden model provided the best fits to both shear stress and normal stress. In conclusion, we developed a robust protocol to generate regularly-shaped, homogeneous thrombus mimics that lend themselves to simple shear testing under large deformation. Future studies will extend our model to include the effect of maturation and explore its fracture properties toward a better understanding of embolization.

摘要

在美国,每年有30万至60万患者受到深静脉血栓形成和肺栓塞的影响。为了更好地理解肺栓塞高度机械性的病理生理学,我们着手开发一种体外血栓模拟物,并在大变形简单剪切条件下对该模拟物进行测试。除了报告我们的模拟物在简单剪切下的力学性能外,我们还探究了其力学性能对凝血条件和血液储存时间的敏感性,并比较了三种超弹性材料模型拟合我们数据的能力。我们发现,由全血制成的血栓模拟物在简单剪切下准静态测试至50%应变时表现出应变硬化、负坡印廷效应和滞后现象。此外,我们发现这些模拟物的刚度不会随凝血条件或血液储存时间而显著变化。在我们测试的三种超弹性本构模型中,奥格登模型对剪应力和法向应力的拟合效果最佳。总之,我们开发了一种可靠的方案来生成形状规则、均匀的血栓模拟物,便于在大变形下进行简单剪切测试。未来的研究将扩展我们的模型,以纳入成熟的影响,并探索其断裂特性,以便更好地理解栓塞形成。

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