首页> 外文期刊>Korean journal of radiology : >Correlation of Histological Examination of Meniscus with MR Images: Focused on High Signal Intensity of the Meniscus Not Caused by Definite Meniscal Tear and Impact on MR Diagnosis of Tears
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Correlation of Histological Examination of Meniscus with MR Images: Focused on High Signal Intensity of the Meniscus Not Caused by Definite Meniscal Tear and Impact on MR Diagnosis of Tears

机译:半月板组织学检查与MR图像的相关性:集中于半月板撕裂未引起的半月板的高信号强度及其对眼泪MR诊断的影响

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Objective To document the causes of high signal intensity of the meniscus which is not caused by definite meniscal tears on MR imaging, through correlation with histological examination. Materials and Methods For the correlation between the MR image and histology, we obtained prospectively 31 meniscal specimens from 21 patients. Proton density-weighted turbo spin-echo MR images were used. Minimal tear, thinning of the lamellar layer, degeneration of the central layer, and radial tie fibers were detected upon histological examination, and were correlated with the corresponding MR images. Results Minimal tear of the lamellar layer was seen in 60 zones out of 100 slides. On MR images, 29 (48.3%) of these 60 zones had high signal intensity. Thinning of the lamellar layer was seen in 24 zones, with 7 (29.2%) having high signal intensity. 57 central zones showed degenerative change in the central layer and high signal intensity on all corresponding MR images. Radial tie fibers in the central layer appeared as high signal intensity areas. Conclusion Minimal tear and thinning of the lamellar layer, degeneration and radial tie fibers of the central layer of the meniscus cause high signal intensity on MR images.
机译:目的通过与组织学检查的相关性,记录不是由明确的半月板撕裂引起的半月板信号强度高的原因。材料和方法为了获得MR图像与组织学之间的相关性,我们从21例患者中获得了31个半月板样本。使用质子密度加权涡轮自旋回波MR图像。通过组织学检查发现最小的撕裂,薄层的变薄,中央层的变性和放射状的结扎纤维,并与相应的MR图像相关。结果在100张载玻片中的60个区域中观察到层状层的撕裂最小。在MR图像上,这60个区域中有29个(48.3%)具有高信号强度。在24个区域中发现层状层变薄,其中7个(29.2%)具有高信号强度。 57个中心区域在所有相应的MR图像上显示出中心层的退行性变化和高信号强度。中心层的径向束缚纤维表现为高信号强度区域。结论层状层的最小撕裂和变薄,半月板中央层的变性和径向束缚纤维会在MR图像上产生高信号强度。

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