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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >T2 MR imaging vs. computational modeling of human articular cartilage tissue functionality
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T2 MR imaging vs. computational modeling of human articular cartilage tissue functionality

机译:T2 MR成像与人类关节软骨组织功能的计算建模

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Abstract The detection of early stages of cartilage degeneration remains diagnostically challenging. One promising non-invasive approach is to functionally assess the tissue response to loading by serial magnetic resonance (MR) imaging in terms of T2 mapping under simultaneous mechanical loading. As yet, however, it is not clear which cartilage component contributes to the tissue functionality as assessed by quantitative T2 mapping. To this end, quantitative T2 maps of histologically intact cartilage samples (n=8) were generated using a clinical 3.0-T MR imaging system. Using displacement-controlled quasi-static indentation loading, serial T2 mapping was performed at three defined strain levels and loading-induced relative changes were determined in distinct regions-of-interest. Samples underwent conventional biomechanical testing (by unconfined compression) as well as histological assessment (by Mankin scoring) for reference purposes. Moreover, an anisotropic hyperelastic constitutive model of cartilage was implemented into a finite element (FE) code for cross-referencing. In efforts to simulate the evolution of compositional and structural intra-tissue changes under quasi-static loading, the indentation-induced changes in quantitative T2 maps were referenced to underlying changes in cartilage composition and structure. These changes were parameterized as cartilage fluid, proteoglycan and collagen content as well as collagen orientation. On a pixel-wise basis, each individual component correlation with T2 relaxation times was determined by Spearman's ρ s and significant correlations were found between T2 relaxation times and all four tissue parameters for all indentation strain levels. Thus, the biological changes in functional MR Imaging parameters such as T2 can further be characterized to strengthen the scientific basis of functional MRI techniques with regards to their perspective clinical applications. ]]>
机译:摘要软骨变性早期阶段的检测仍然是诊断具有挑战性的。一个有前途的非侵入性方法是在同时机械负载下在T2映射方面通过串行磁共振(MR)成像来计算对装载的组织响应。然而,如此,尚不清楚哪种软骨组分有助于通过定量T2映射评估的组织官能度。为此,使用临床3.0-T MR成像系统产生组织学上完整软骨样品(n = 8)的定量T2映像。使用位移控制的准静态压痕加载,在三个定义的应变水平下进行串行T2映射,并以不同的物理区域确定负载诱导的相对变化。样品接受了常规的生物力学测试(通过不包含束缚的压缩)以及组织学评估(通过人国金得分)以供参考。此外,在交叉引用的有限元(FE)代码中实现了软骨的各向异性超弹性本构模型。在模拟准静态负荷下模拟组建和组织内部组织内变化的演变的努力,缩进诱导的定量T2地图的变化被引用了软骨组成和结构的潜在变化。这些变化是作为软骨液,蛋白多糖和胶原蛋白含量以及胶原取向的参数化。在像素明智的基础上,通过Spearman的ρs和T2ρs确定的每个单独的组分相关性,并且在T2弛豫时间和所有压痕应变水平之间的所有四个组织参数之间发现了显着的相关性。因此,可以进一步表征功能MR成像参数的功能性MR成像参数的生物变化,以加强功能性MRI技术的科学依据,了解其透视临床应用。 ]]>

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