Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN, USA.
School of Mechanical Engineering, Purdue University, West Lafayette, IN, USA.
J Biomech. 2014 Aug 22;47(11):2801-6. doi: 10.1016/j.jbiomech.2014.05.026. Epub 2014 Jun 9.
The purpose of this study was to compare displacement behavior of cyclically loaded cadaveric human intervertebral discs as measured noninvasively on a clinical 3.0 T and a research 9.4 T MRI system. Intervertebral discs were cyclically compressed at physiologically relevant levels with the same MRI-compatible loading device in the clinical and research systems. Displacement-encoded imaging was synchronized to cyclic loading to measure displacements under applied loading with MRI (dual MRI). Displacements from the two systems were compared individually using linear regression and, across all specimens, using Bland-Altman analysis. In-plane displacement patterns measured at 3.0 T and 9.4 T were qualitatively comparable and well correlated. Bland-Altman analyses showed that over 90% of displacement values within the intervertebral disc regions of interest lay within the limits of agreement. Measurement of displacement using dual MRI using a 3.0 T clinical system is comparable to that of a 9.4 T research system. Additional refinements of software, technique implementation, and image processing have potential to improve agreement between different MRI systems. Despite differences in MRI systems in this initial implementation, this work demonstrates that dual MRI can be reliably implemented at multiple magnetic field strengths, permitting translation of dual MRI for a variety of applications in the study of tissue and biomaterial biomechanics.
本研究旨在比较在临床 3.0T 和研究 9.4T MRI 系统上无创测量的循环加载尸体人类椎间盘的位移行为。在临床和研究系统中,使用相同的 MRI 兼容加载装置以生理相关水平对椎间盘进行循环压缩。位移编码成像与循环加载同步,以 MRI(双 MRI)测量施加负载下的位移。使用线性回归分别比较两个系统的位移,并在所有标本中使用 Bland-Altman 分析进行比较。在 3.0T 和 9.4T 测量的面内位移模式在定性上是可比的,相关性良好。Bland-Altman 分析表明,在椎间盘感兴趣区域内,超过 90%的位移值在一致性限内。使用临床 3.0T 系统的双 MRI 测量位移与使用研究 9.4T 系统的测量结果相当。软件、技术实现和图像处理的进一步改进有可能提高不同 MRI 系统之间的一致性。尽管在本初步实施中 MRI 系统存在差异,但这项工作表明,双 MRI 可以在多个磁场强度下可靠地实现,从而为组织和生物材料生物力学研究中的各种应用转化双 MRI 提供了可能。