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冠状动脉胶原纤维的重切片图像空间构建

Resliced image space construction for coronary artery collagen fibers.

作者信息

Luo Tong, Chen Huan, Kassab Ghassan S

机构信息

California Medical Innovations Institute, San Diego, California, United States of America.

出版信息

PLoS One. 2017 Sep 27;12(9):e0184972. doi: 10.1371/journal.pone.0184972. eCollection 2017.

Abstract

Collagen fibers play an important role in the biomechanics of the blood vessel wall. The objective of this study was to determine the 3D microstructure of collagen fibers in the media and adventitia of coronary arteries. We present a novel optimal angle consistence algorithm to reform image slices in the visualization and analysis of 3D collagen images. 3D geometry was reconstructed from resliced image space where the 3D skeleton was extracted as the primary feature for accurate reconstruction of geometrical parameters. Collagen fibers (range 80-200) were reconstructed from the porcine coronary artery wall for the measurement of various morphological parameters. Collagen waviness and diameters were 1.37 ± 0.19 and 2.61 ± 0.89 μm, respectively. The biaxial distributions of orientation had two different peaks at 110.7 ± 25.2° and 18.4 ± 19.3°. Results for width, waviness, and orientation were found to be in good agreement with manual measurements. In addition to accurately measuring 2D features more efficiently than the manual approach, the present method produced 3D features that could not be measured in the 2D manual approach. These additional parameters included the tilt angle (5.10 ± 2.95°) and cross-sectional area (CSA; 5.98 ± 3.79 μm2) of collagen fibers. These 3D collagen reconstructions provide accurate and reliable microstructure for biomechanical modeling of vessel wall mechanics.

摘要

胶原纤维在血管壁的生物力学中发挥着重要作用。本研究的目的是确定冠状动脉中膜和外膜中胶原纤维的三维微观结构。我们提出了一种新颖的最佳角度一致性算法,用于在三维胶原图像的可视化和分析中对图像切片进行重整。从重新切片的图像空间重建三维几何结构,在该空间中提取三维骨架作为精确重建几何参数的主要特征。从猪冠状动脉壁重建胶原纤维(范围为80 - 200),以测量各种形态学参数。胶原纤维的波纹度和直径分别为1.37±0.19和2.61±0.89μm。取向的双轴分布在110.7±25.2°和18.4±19.3°处有两个不同的峰值。发现宽度、波纹度和取向的结果与手动测量结果高度一致。除了比手动方法更有效地准确测量二维特征外,本方法还产生了二维手动方法无法测量的三维特征。这些额外的参数包括胶原纤维的倾斜角(5.10±2.95°)和横截面积(CSA;5.98±3.79μm²)。这些三维胶原重建为血管壁力学的生物力学建模提供了准确可靠的微观结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2228/5617181/3631e85755f9/pone.0184972.g001.jpg

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