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Regional Structural and Biomechanical Alterations of the Ovine Main Pulmonary Artery During Postnatal Growth

机译:产后生长过程中绵羊主要肺动脉的区域结构和生物力学变化

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摘要

The engineering foundation for novel approaches for the repair of congenital defects that involve the main pulmonary artery (PA) must rest on an understanding of changes in the structure-function relationship that occur during postnatal maturation. In the present study, we quantified the postnatal growth patterns in structural and biomechanical behavior in the ovine PA in the juvenile and adult stages. The biaxial mechanical properties and collagen and elastin fiber architecture were studied in four regions of the PA wall, with the collagen recruitment of the medial region analyzed using a custom biaxial mechanical-multiphoton microscopy system. Circumferential residual strain was also quantified at the sinotubular junction and bifurcation locations, which delimit the PA. The PA wall demonstrated significant mechanical anisotropy, except in the posterior region where it was nearly isotropic. Overall, we observed only moderate changes in regional mechanical properties with growth. We did observe that the medial and lateral locations experience a moderate increase in anisotropy. There was an average of about 24% circumferential residual stain present at the luminal surface in the juvenile stage that decreased to 16% in the adult stage with a significant decrease at the bifurcation, implying that the PA wall remodels toward the bifurcation with growth. There were no measurable changes in collagen and elastin content of the tunica media with growth. On average, the collagen fiber recruited more rapidly with strain in the adult compared to the juvenile. Interestingly, the PA thickness remained constant with growth. When this fact is combined with the observed stable overall mechanical behavior and increase in vessel diameter with growth, a simple Laplace Law wall stress estimate suggests an increase in effective PA wall stress with postnatal maturation. This observation is contrary to the accepted theory of maintenance of homeostatic stress levels in the regulation of vascular function and suggests alternative mechanisms regulate postnatal somatic growth. Understanding the underlying mechanisms, incorporating important structural features during growth, will help to improve our understanding of congenital defects of the PA and lay the basis for functional duplication in their repair and replacement.
机译:修复涉及肺主动脉(PA)的先天性缺陷的新方法的工程基础必须基于对产后成熟过程中结构与功能关系的变化的理解。在本研究中,我们量化了幼年和成年期绵羊PA中结构和生物力学行为的产后生长方式。在PA壁的四个区域中研究了双轴力学性能以及胶原蛋白和弹性纤维结构,并使用定制的双轴机械多光子显微镜系统分析了内侧区域的胶原蛋白募集。周残余应力也可在限定肾小管的窦管结和分叉处定量。除了在后方区域几乎各向同性之外,PA壁表现出显着的机械各向异性。总体而言,我们观察到区域机械性能仅随增长而适度变化。我们确实观察到内侧和外侧的位置经历了中等程度的各向异性。在幼年期的管腔表面平均存在约24%的周向残留污迹,在成年期减少到16%,在分叉处显着减少,这意味着PA壁随着生长而朝着分叉重塑。随着生长,中膜的胶原蛋白和弹性蛋白含量没有可测量的变化。平均而言,与青少年相比,成年后胶原纤维的吸收较快。有趣的是,PA厚度随生长而保持恒定。当将此事实与观察到的稳定的总体机械性能以及随着生长而增加的血管直径相结合时,简单的拉普拉斯定律壁应力估计值表明,随着出生后成熟,有效的PA壁应力会增加。该观察结果与公认的在调节血管功能中维持体内稳态压力水平的理论背道而驰,并暗示了替代机制可调节出生后的体细胞生长。了解潜在的机制,在生长过程中纳入重要的结构特征,将有助于增进我们对PA先天性缺陷的了解,并为修复和置换功能重复奠定基础。

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