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首页> 外文期刊>Journal of Therapeutic Ultrasound >Effects of magnetic resonance-guided high-intensity focused ultrasound ablation on bone mechanical properties and modeling
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Effects of magnetic resonance-guided high-intensity focused ultrasound ablation on bone mechanical properties and modeling

机译:磁共振引导的高强度聚焦超声消融术对骨力学性能和建模的影响

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Background Magnetic resonance-guided high-intensity focused ultrasound (MR-HIFU) is a promising technique for palliative treatment of bone pain. In this study, the effects of MR-HIFU ablation on bone mechanics and modeling were investigated. Methods A total of 12 healthy rat femurs were ablated using 10 W for 46?±?4 s per sonication with 4 sonications for each femur. At 7 days after treatments, all animals underwent MR and single photon emission computed tomography/computed tomography (SPECT/CT) imaging. Then, six animals were euthanized. At 1 month following ablations, the remaining six animals were scanned again with MR and SPECT/CT prior to euthanization. Thereafter, both the HIFU-treated and contralateral control bones of three animals from each time interval were processed for histology, whereas the remaining bones were subjected to micro-CT (μCT), three-point bending tests, and micro-finite element (micro-FE) analyses. Results At 7 days after HIFU ablations, edema formation around the treated bones coupled with bone marrow and cortical bone necrosis was observed on MRI and histological images. SPECT/CT and μCT images revealed presence of bone modeling through an increased uptake of 99m Tc-MDP and formation of woven bone, respectively. At 31 days after ablations, as illustrated by imaging and histology, healing of the treated bone and the surrounding soft tissue was noted, marked by decreased in amount of tissue damage, formation of scar tissue, and sub-periosteal reaction. The results of three-point bending tests showed no significant differences in elastic stiffness, ultimate load, and yield load between the HIFU-treated and contralateral control bones at 7 days and 1 month after treatments. Similarly, the elastic stiffness and Young’s moduli determined by micro-FE analyses at both time intervals were not statistically different. Conclusions Multimodality imaging and histological data illustrated the presence of HIFU-induced bone damage at the cellular level, which activated the bone repair mechanisms. Despite that, these changes did not have a mechanical impact on the bone.
机译:背景技术磁共振引导的高强度聚焦超声(MR-HIFU)是用于姑息治疗骨痛的一种有前途的技术。在这项研究中,研究了MR-HIFU消融对骨骼力学和建模的影响。方法以10 W的功率对总共12只健康的大鼠股骨进行消融,每次超声处理46?±?4 s,每个股骨进行4次超声处理。治疗后第7天,所有动物均接受MR和单光子发射计算机断层扫描/计算机断层扫描(SPECT / CT)成像。然后,对六只动物实施安乐死。消融后1个月,在安乐死之前,再次用MR和SPECT / CT扫描其余六只动物。此后,对来自每个时间间隔的三只动物的HIFU处理和对侧对照骨骼均进行了组织学处理,而其余骨骼则进行了微CT(μCT),三点弯曲测试和微有限元(micro -FE)分析。结果HIFU消融后第7天,在MRI和组织学图像上观察到治疗后的骨头周围水肿形成,并伴有骨髓和皮质骨坏死。 SPECT / CT和μCT图像分别通过增加99m Tc-MDP的摄取和编织骨的形成揭示了骨骼模型的存在。消融后第31天,如影像学和组织学所示,观察到治疗骨和周围软组织的愈合,其特征在于组织损伤的减少,瘢痕组织的形成和骨膜下反应的减少。三点弯曲试验的结果表明,在接受HIFU处理的对侧骨骼和对侧对照骨骼在处理后7天和1个月之间,弹性刚度,极限载荷和屈服载荷没有显着差异。同样,在两个时间间隔内通过microFE分析确定的弹性刚度和杨氏模量在统计学上也没有差异。结论多模态成像和组织学数据表明在细胞水平上存在HIFU诱导的骨损伤,从而激活了骨修复机制。尽管如此,这些变化对骨骼没有机械影响。

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