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一种使用 micro-CT 对啮齿类动物骨折模型中的骨痂进行分割和分析的新方法。

A new method for segmentation and analysis of bone callus in rodent fracture models using micro-CT.

机构信息

Comparative Biological Sciences, Royal Veterinary College, London, UK.

Clinical Science and Services, Royal Veterinary College, London, UK.

出版信息

J Orthop Res. 2023 Aug;41(8):1717-1728. doi: 10.1002/jor.25507. Epub 2023 Jan 11.

Abstract

Fracture burden has created a need to better understand bone repair processes under different pathophysiological states. Evaluation of structural and material properties of the mineralized callus, which is integral to restoring biomechanical stability is, therefore, vital. Microcomputed tomography (micro-CT) can facilitate noninvasive imaging of fracture repair, however, current methods for callus segmentation are only semiautomated, restricted to defined regions, time/labor intensive, and prone to user variation. Herein, we share a new automatic method for segmenting callus in micro-CT tomograms that will allow for objective, quantitative analysis of the bone fracture microarchitecture. Fractured and nonfractured mouse femurs were scanned and processed by both manual and automated segmentation of fracture callus from cortical bone after which microarchitectural parameters were analyzed. All segmentation and analysis steps were performed using CTAn (Bruker) with automatic segmentation performed using the software's image-processing plugins. Results showed automatic segmentation reliably and consistently segmented callus from cortical bone, demonstrating good agreement with manual methods with low bias: tissue volume (TV): -0.320 mm , bone volume (BV): 0.0358 mm , and bone volume/tissue volume (BV/TV): -3.52%, and was faster and eliminated user-bias and variation. Method scalability and translatability across rodent models were verified in scans of fractured rat femora showing good agreement with manual methods with low bias: TV: -3.654 mm , BV: 0.830 mm , and BV/TV: 7.81%. Together, these data validate a new automated method for segmentation of callus and cortical bone in micro-CT tomograms that we share as a fast, reliable, and less user-dependent tool for application to study bone callus in fracture, and potentially elsewhere.

摘要

骨折负担要求我们更好地理解不同病理生理状态下的骨修复过程。评估矿化性骨痂的结构和材料特性对于恢复生物力学稳定性至关重要。微计算机断层扫描(micro-CT)可以促进骨折修复的非侵入性成像,但是,目前的骨痂分割方法仅为半自动的,仅限于特定区域,费时费力,并且容易受到用户差异的影响。在此,我们共享一种新的自动方法,用于分割 micro-CT 断层扫描中的骨痂,这将允许对骨折微结构进行客观,定量分析。扫描了骨折和非骨折的小鼠股骨,并通过手动和自动分割皮质骨中的骨折骨痂对其进行了处理,然后分析了微结构参数。所有分割和分析步骤均使用 CTAn(Bruker)完成,自动分割使用软件的图像处理插件完成。结果表明,自动分割能够可靠且一致地将骨痂与皮质骨分割开来,与手动方法相比具有良好的一致性,且偏差较小:组织体积(TV):-0.320mm ³,骨体积(BV):0.0358mm ³,骨体积/组织体积(BV/TV):-3.52%,并且速度更快,消除了用户偏差和变异性。在对骨折大鼠股骨进行扫描时,验证了该方法的可扩展性和跨啮齿动物模型的可转移性,与手动方法相比具有良好的一致性,且偏差较小:TV:-3.654mm ³,BV:0.830mm ³,BV/TV:7.81%。这些数据共同验证了一种新的自动方法,用于分割 micro-CT 断层扫描中的骨痂和皮质骨,我们将其作为一种快速,可靠且对用户依赖性较低的工具进行共享,可用于研究骨折中的骨痂,并且可能在其他地方也有应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a0b/10947128/0f655f54f849/JOR-41-1717-g005.jpg

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