在超高场临床前和临床扫描仪上对离体脑样本进行MRI的分段电磁射频线圈

Daniel Papoti , Diego Szczupak , Luiz G.C. Santos , Khallil T. Chaim , Maria C.G. Otaduy , David J. Schaeffer , Edson L.G. Vidoto , Alberto Tannús , Afonso C. Silva
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引用次数: 0

摘要

磁共振成像(MRI)是一种众所周知的广泛应用于神经科学研究和神经系统疾病的临床诊断的成像方式,主要是因为它能够可视化脑微结构和量化各种代谢物。此外,它的非侵入性使得离体脑样本的高分辨率MRI与组织学的相关性成为可能,支持神经退行性疾病(如阿尔茨海默病或帕金森病)的研究。然而,离体MRI的质量和分辨率在很大程度上取决于所研究的不同尺寸和形状的样品的填充系数最大化的专用射频线圈的可用性。例如,小型专用射频(RF)线圈并不总是用于超高场全身MRI扫描仪。即使对于超高场临床前扫描仪,用于离体MRI的特定RF线圈也很昂贵,而且并不总是可用。在这里,我们描述了基于螺线管几何结构的两个射频线圈的设计和构建,用于在7T全身扫描仪中对人脑组织进行离体MRI,以及在9.4T临床前扫描仪中对狨猴大脑样本进行离体MRI。我们设计了7T螺线管射频线圈,以最大限度地提高人脑样本在卡带上的填充系数,而9.4T螺线管用于容纳在50 ml离心管中调节的狨猴脑样本。两种螺线管设计都在收发器模式下工作。测得的B1+图在感兴趣的成像体积中显示出高度的均匀性,在成像体积上具有高信噪比。使用7T螺线管获取人脑样品的高分辨率(平面80µm,层厚500µm)图像,使用9.4T螺线管线圈获得猴脑样品的各向同性分辨率为60µm。
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Segmented solenoid RF coils for MRI of ex vivo brain samples at ultra-high field preclinical and clinical scanners

Magnetic resonance imaging (MRI) is a well-known and widespread imaging modality for neuroscience studies and the clinical diagnoses of neurological disorders, mainly due to its capability to visualize brain microstructures and quantify various metabolites. Additionally, its noninvasive nature makes possible the correlation of high-resolution MRI from ex vivo brain samples with histology, supporting the study of neurodegenerative disorders such as Alzheimer's or Parkinson's disease. However, the quality and resolution of ex vivo MRI highly depend on the availability of specialized radiofrequency coils with maximized filling factors for the different sizes and shapes of the samples to be studied. For instance, small, dedicated radiofrequency (RF) coils are not always commercially available in ultrahigh field whole-body MRI scanners. Even for ultrahigh field preclinical scanners, specific RF coils for ex vivo MRI are expensive and not always available. Here, we describe the design and construction of two RF coils based on the solenoid geometry for ex vivo MRI of human brain tissues in a 7T whole-body scanner and for ex vivo MRI of marmoset brain samples in a 9.4T preclinical scanner. We designed the 7T solenoid RF coil to maximize the filling factor of human brain samples conditioned on cassettes for histology, while the 9.4T solenoid was constructed to accommodate marmoset brain samples conditioned in 50 ml centrifuge tubes. Both solenoid designs operate in transceiver mode. The measured B1+ maps show a high level of homogeneity in the imaging volume of interest, with a high signal-to-noise ratio over the imaging volume. High-resolution (80 µm in plane, 500 µm slice thickness) images of human brain samples were acquired with the 7T solenoid, while marmoset brain samples were acquired with an isotropic resolution of 60 µm using the 9.4T solenoid coil.

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