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基于先进的多参数 MRI 技术的关节软骨个体化计算建模研究。

Towards Patient-Specific Computational Modelling of Articular Cartilage on the Basis of Advanced Multiparametric MRI Techniques.

机构信息

RWTH Aachen University, Department of Continuum Mechanics, 52072, Aachen, Germany.

Stanford University, Department of Mechanical Engineering, Stanford, CA, 94305, USA.

出版信息

Sci Rep. 2019 May 9;9(1):7172. doi: 10.1038/s41598-019-43389-y.

Abstract

Cartilage degeneration is associated with tissue softening and represents the hallmark change of osteoarthritis. Advanced quantitative Magnetic Resonance Imaging (qMRI) techniques allow the assessment of subtle tissue changes not only of structure and morphology but also of composition. Yet, the relation between qMRI parameters on the one hand and microstructure, composition and the resulting functional tissue properties on the other hand remain to be defined. To this end, a Finite-Element framework was developed based on an anisotropic constitutive model of cartilage informed by sample-specific multiparametric qMRI maps, obtained for eight osteochondral samples on a clinical 3.0 T MRI scanner. For reference, the same samples were subjected to confined compression tests to evaluate stiffness and compressibility. Moreover, the Mankin score as an indicator of histological tissue degeneration was determined. The constitutive model was optimized against the resulting stress responses and informed solely by the sample-specific qMRI parameter maps. Thereby, the biomechanical properties of individual samples could be captured with good-to-excellent accuracy (mean R [square of Pearson's correlation coefficient]: 0.966, range [min, max]: 0.904, 0.993; mean Ω [relative approximated error]: 33%, range [min, max]: 20%, 47%). Thus, advanced qMRI techniques may be complemented by the developed computational model of cartilage to comprehensively evaluate the functional dimension of non-invasively obtained imaging biomarkers. Thereby, cartilage degeneration can be perspectively evaluated in the context of imaging and biomechanics.

摘要

软骨退变与组织软化有关,是骨关节炎的标志性变化。先进的定量磁共振成像(qMRI)技术不仅可以评估结构和形态的细微组织变化,还可以评估组成。然而,qMRI 参数与微观结构、组成以及由此产生的功能组织特性之间的关系仍有待确定。为此,基于软骨各向异性本构模型和样本特异性多参数 qMRI 图谱,在临床 3.0T MRI 扫描仪上对 8 个骨软骨样本进行了研究,建立了有限元框架。作为组织退变的指标,还对相同的样本进行了约束压缩试验,以评估刚度和可压缩性。本构模型是根据得到的应力响应进行优化的,仅由样本特异性 qMRI 参数图谱提供信息。这样,就可以用较好到很好的精度(平均 R [皮尔逊相关系数的平方]:0.966,范围[最小,最大]:0.904,0.993;平均Ω[相对近似误差]:33%,范围[最小,最大]:20%,47%)来捕获单个样本的生物力学特性。因此,先进的 qMRI 技术可以与开发的软骨计算模型相结合,全面评估非侵入性获得的成像生物标志物的功能维度。从而可以在影像学和生物力学的背景下对软骨退变进行前瞻性评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2e06/6509121/e8b5c7ef6049/41598_2019_43389_Fig1_HTML.jpg

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