首页> 外文会议>Physiology, Function, and Structure from Medical Images pt.1; Progress in Biomedical Optics and Imaging; vol.7,no.29 >A multi-organ biomechanical model to analyze prostate deformation due to large deformation of the rectum
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A multi-organ biomechanical model to analyze prostate deformation due to large deformation of the rectum

机译:一种多器官生物力学模型,用于分析由于直肠大变形引起的前列腺变形

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Magnetic resonance imaging (MRI) with an endorectal receiver coil (ERC) provides superior visualization of the prostate gland and its surrounding anatomy at the expense of large anatomical deformation. The ability to correct for this deformation is critical to integrate the MR images into the CT-based treatment planning for radiotherapy. The ability to quantify and understand the physiological motion due to large changes in rectal filling can also improve the precision of image-guided procedures. The purpose of this study was to understand the biomechanical relationship between the prostate, rectum, and bladder using a finite element-based multi-organ deformable image registration method, 'Morfeus' developed at our institution. Patients diagnosed with prostate cancer were enrolled in the study. Gold seed markers were implanted in the prostate and MR scans performed with the ERC in place and its surrounding balloon inflated to varying volumes (0 - 100cc). The prostate, bladder, and rectum were then delineated, converted into finite element models, and assigned appropriate material properties. Morfeus was used to assign surface interfaces between the adjacent organs and deform the bladder and rectum from one position to another, obtaining the position of the prostate through finite element analysis. This approach achieves sub-voxel accuracy of image co-registration in the context of a large ERC deformation, while providing a biomechanical understanding of the multi-organ physiological relationship between the prostate, bladder, and rectum. The development of a deformable registration strategy is essential to integrate the superior information offered in MR images into the treatment planning process.
机译:带有直肠内接收器线圈(ERC)的磁共振成像(MRI)提供了前列腺及其周围解剖结构的出色可视化效果,但以大的解剖变形为代价。校正此变形的能力对于将MR图像整合到基于CT的放射治疗计划中至关重要。量化和理解由于直肠充盈的巨大变化而引起的生理运动的能力还可以提高图像引导程序的精度。这项研究的目的是使用我们机构开发的基于有限元的多器官可变形图像配准方法“ Morfeus”来了解前列腺,直肠和膀胱之间的生物力学关系。被诊断患有前列腺癌的患者入选了该研究。将金种子标记物植入前列腺中,并在适当位置使用ERC进行MR扫描,并将其周围的球囊充气至不同体积(0-100cc)。然后描绘前列腺,膀胱和直肠,将其转换为有限元模型,并分配适当的材料属性。 Morfeus用于在相邻器官之间分配表面界面,并使膀胱和直肠从一个位置变形到另一个位置,从而通过有限元分析获得前列腺的位置。这种方法在大ERC变形的情况下实现了图像共配准的亚体素精度,同时提供了对前列腺,膀胱和直肠之间的多器官生理关系的生物力学理解。可变形配准策略的发展对于将MR图像中提供的卓越信息整合到治疗计划过程中至关重要。

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