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同步辐射显微计算机断层扫描对大鼠脊髓损伤模型中微结构和血管再生的三维定量分析

Three Dimensional Quantification of Microarchitecture and Vessel Regeneration by Synchrotron Radiation Microcomputed Tomography in a Rat Model of Spinal Cord Injury.

作者信息

Cao Yong, Zhou Yuan, Ni Shuangfei, Wu Tianding, Li Ping, Liao Shenghui, Hu Jianzhong, Lu Hongbin

机构信息

1 Department of Spine Surgery, Central South University , Changsha, China .

2 Department of Thoracic Surgery, Xiangya Hospital, Central South University , Changsha, China .

出版信息

J Neurotrauma. 2017 Mar 15;34(6):1187-1199. doi: 10.1089/neu.2016.4697. Epub 2016 Dec 2.

Abstract

A full understanding of the mechanisms behind spinal cord injury (SCI) processes requires reliable three-dimensional (3D) imaging tools for a thorough analysis of changes in angiospatial architecture. We aimed to use synchrotron radiation μCT (SRμCT) to characterize 3D temporal-spatial changes in microvasculature post-SCI. Morphometrical measurements revealed a significant decrease in vascular volume fraction, vascular bifurcation density, vascular segment density, and vascular connectivity density 1 day post-injury, followed by a gradual increase at 3, 7, and 14 days. At 1 day post-injury, SRμCT revealed an increase in vascular tortuosity (VT), which reached a plateau after 7 days and decreased slightly during the healing process. In addition, SRμCT images showed that vessels were largely concentrated in the gray matter 1 day post-injury. The maximal endothelial cell proliferation rate was detected at 7 days post-injury. The 3D morphology of the cavity appears in the spinal cord at 28 days post-injury. We describe a methodology for 3D analysis of vascular repair in SCI and reveal that endogenous revascularization occurs during the healing process. The spinal cord microvasculature configuration undergoes 3D remodeling and modification during the post-injury repair process. Examination of these processes might contribute to a full understanding of the compensatory vascular mechanisms after injury and aid in the development of novel and effective treatment for SCI.

摘要

要全面了解脊髓损伤(SCI)过程背后的机制,需要可靠的三维(3D)成像工具,以便对血管空间结构的变化进行全面分析。我们旨在使用同步辐射μCT(SRμCT)来表征SCI后微血管的三维时空变化。形态测量显示,损伤后1天,血管体积分数、血管分支密度、血管段密度和血管连通性密度显著降低,随后在3天、7天和14天逐渐增加。损伤后1天,SRμCT显示血管迂曲度(VT)增加,7天后达到平台期,并在愈合过程中略有下降。此外,SRμCT图像显示,损伤后1天血管主要集中在灰质中。在损伤后7天检测到最大内皮细胞增殖率。损伤后28天,脊髓中出现空洞的三维形态。我们描述了一种用于SCI血管修复三维分析的方法,并揭示了在愈合过程中发生内源性血管再生。脊髓微血管结构在损伤后修复过程中经历三维重塑和改变。对这些过程的研究可能有助于全面了解损伤后的代偿性血管机制,并有助于开发新的有效的SCI治疗方法。

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