Gundiah Namrata, Kam Kimberly, Matthews Peter B, Guccione Julius, Dwyer Harry A, Saloner David, Chuter Timothy A M, Guy T Sloane, Ratcliffe Mark B, Tseng Elaine E
Department of Surgery, University of California at San Francisco Medical Center, San Francisco, California 94143, USA.
Ann Thorac Surg. 2008 May;85(5):1631-8. doi: 10.1016/j.athoracsur.2008.01.035.
Aortic sinuses are crucial components of the aortic root and important for aortic valve function. Mathematical modeling of various aortic valve or root replacements requires tissue material properties, and those of the aortic sinuses are unknown. The aim of this study is to compare the biaxial mechanical properties of the individual porcine aortic sinuses.
Square specimens, oriented in the longitudinal and circumferential directions, were excised from the left coronary, right coronary, and noncoronary porcine sinuses. Tissue thickness was measured, and specimens were subjected to equibiaxial mechanical testing. Stress-strain data corresponding to a 35% stretch were fitted to a Fung strain energy function. Tissue stiffness and anisotropy were compared at 0.3 strain.
The circumferential direction was more compliant than the longitudinal one for left coronary (183.03 +/- 40.78 kPa versus 231.17 +/- 45.38 kPa, respectively; p = 0.04) and right coronary sinuses (321.74 +/- 129.68 kPa versus 443.49 +/- 143.59 kPa, respectively; p = 0.02) at 30% strain. No such differences were noted for noncoronary sinuses (331.74 +/- 129.68 kPa versus 415.98 +/- 191.38 kPa; p = 0.19). Left coronary sinus was also significantly more compliant than right and noncoronary sinuses. There were no differences between right coronary and noncoronary sinus tissues.
We demonstrate that the material properties of the porcine aortic sinuses are not symmetric. The left coronary sinus is significantly more compliant than the remaining sinuses. Realistic modeling of the aortic root must take into account the asymmetric differences in tissue material properties of the aortic sinuses.
主动脉窦是主动脉根部的关键组成部分,对主动脉瓣功能至关重要。各种主动脉瓣或根部置换的数学建模需要组织材料特性,而主动脉窦的材料特性尚不清楚。本研究的目的是比较个体猪主动脉窦的双轴力学性能。
从猪的左冠状动脉窦、右冠状动脉窦和无冠状动脉窦中切取纵向和周向取向的方形标本。测量组织厚度,并对标本进行等双轴力学测试。将对应于35%拉伸的应力-应变数据拟合到Fung应变能函数。在0.3应变下比较组织刚度和各向异性。
在30%应变时,左冠状动脉窦(分别为183.03±40.78 kPa和231.17±45.38 kPa;p = 0.04)和右冠状动脉窦(分别为321.74±129.68 kPa和443.49±143.59 kPa;p = 0.02)的周向方向比纵向方向更具顺应性。无冠状动脉窦未观察到此类差异(331.74±129.68 kPa和415.98±191.38 kPa;p = 0.19)。左冠状动脉窦也比右冠状动脉窦和无冠状动脉窦明显更具顺应性。右冠状动脉窦和无冠状动脉窦组织之间没有差异。
我们证明猪主动脉窦的材料特性不对称。左冠状动脉窦比其余窦明显更具顺应性。主动脉根部的逼真建模必须考虑主动脉窦组织材料特性的不对称差异。