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荧光分子断层成像技术在骨形成和吸收的体内纵向成像中的应用。

Longitudinal in vivo imaging of bone formation and resorption using fluorescence molecular tomography.

机构信息

Institute for Biomechanics, ETH Zürich, Zürich, Switzerland.

出版信息

Bone. 2013 Feb;52(2):587-95. doi: 10.1016/j.bone.2012.11.001. Epub 2012 Nov 8.

DOI:10.1016/j.bone.2012.11.001
PMID:23142804
Abstract

Bone research often focuses on anatomical imaging of the bone microstructure, but in order to gain better understanding in how bone remodeling is modulated through interventions also bone formation and resorption processes should be investigated. With this in mind, the purpose of this study was to establish a longitudinal in vivo imaging approach of bone formation and resorption using fluorescence molecular tomography (FMT). In this study the reproducibility, accuracy and sensitivity of FMT for bone imaging were assessed by performing longitudinal measurements with FMT and comparing it to in vivo micro-computed tomography on a set of control mice, and mice in which load-adaptation was induced in the sixth caudal vertebra. The precision error for FMT measurements, expressed as coefficient of variation, was smaller than 16%, indicating acceptable reproducibility. A correlation was found between bone resorption measured with FMT and bone resorption rate measured with in vivo micro-computed tomography only over the first 14days (R=0.81, p<0.01), but not between bone formation measured with FMT and bone formation rate measured with in vivo micro-CT. Bone formation measured by FMT was 89-109% greater (p<0.05) for mice subjected to mechanical loading than control mice. Bone resorption was 5-8% lower, but did not reach a significant difference between groups, indicating moderate sensitivity for FMT. In conclusion, in vivo FMT in mouse tail bones is feasible but needs to be optimized for monitoring load adaptation in living mice.

摘要

骨骼研究通常集中在骨骼微观结构的解剖成像上,但为了更好地了解骨重建是如何通过干预来调节的,还应该研究骨形成和吸收过程。考虑到这一点,本研究的目的是建立一种使用荧光分子断层扫描(FMT)的骨形成和吸收的纵向体内成像方法。在本研究中,通过对一组对照小鼠和第六尾椎骨中进行负荷适应的小鼠进行 FMT 纵向测量,并将其与体内 micro-CT 进行比较,评估了 FMT 用于骨成像的重现性、准确性和灵敏度。FMT 测量的精度误差(表示为变异系数)小于 16%,表明具有可接受的重现性。仅在最初的 14 天内,FMT 测量的骨吸收与体内 micro-CT 测量的骨吸收率之间存在相关性(R=0.81,p<0.01),但 FMT 测量的骨形成与体内 micro-CT 测量的骨形成率之间不存在相关性。与对照组小鼠相比,接受机械加载的小鼠的 FMT 测量的骨形成率高 89-109%(p<0.05)。骨吸收率降低了 5-8%,但两组之间没有达到显著差异,表明 FMT 的灵敏度适中。总之,在小鼠尾巴骨中进行体内 FMT 是可行的,但需要针对活体小鼠的负荷适应进行优化。

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