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个性化足部压疮预防的临床工作流程。

Clinical workflow for personalized foot pressure ulcer prevention.

作者信息

Bucki M, Luboz V, Perrier A, Champion E, Diot B, Vuillerme N, Payan Y

机构信息

TexiSense, Montceau-les-Mines, France .

TexiSense, Montceau-les-Mines, France ; Univ. Grenoble Alpes & CNRS, TIMC-IMAG, F-38000 Grenoble, France; UJF-Grenoble1/AGEIS, Grenoble F-38041, France.

出版信息

Med Eng Phys. 2016 Sep;38(9):845-53. doi: 10.1016/j.medengphy.2016.04.017. Epub 2016 May 17.

Abstract

Foot pressure ulcers are a common complication of diabetes because of patient's lack of sensitivity due to neuropathy. Deep pressure ulcers appear internally when pressures applied on the foot create high internal strains nearby bony structures. Monitoring tissue strains in persons with diabetes is therefore important for an efficient prevention. We propose to use personalized biomechanical foot models to assess strains within the foot and to determine the risk of ulcer formation. Our workflow generates a foot model adapted to a patient's morphology by deforming an atlas model to conform it to the contours of segmented medical images of the patient's foot. Our biomechanical model is composed of rigid bodies for the bones, joined by ligaments and muscles, and a finite element mesh representing the soft tissues. Using our registration algorithm to conform three datasets, three new patient models were created. After applying a pressure load below these foot models, the Von Mises equivalent strains and "cluster volumes" (i.e. volumes of contiguous elements with strains above a given threshold) were measured within eight functionally meaningful foot regions. The results show the variability of both location and strain values among the three considered patients. This study also confirms that the anatomy of the foot has an influence on the risk of pressure ulcer.

摘要

足部压疮是糖尿病常见的并发症,因为神经病变导致患者缺乏感觉。当足部受到压力时,在靠近骨结构的部位会产生较高的内部应变,从而出现深部压疮。因此,监测糖尿病患者的组织应变对于有效预防至关重要。我们建议使用个性化的生物力学足部模型来评估足部内部的应变,并确定溃疡形成的风险。我们的工作流程通过使图谱模型变形以使其符合患者足部分割医学图像的轮廓,生成适应患者形态的足部模型。我们的生物力学模型由代表骨骼的刚体组成,通过韧带和肌肉连接,以及一个表示软组织的有限元网格。使用我们的配准算法来整合三个数据集,创建了三个新的患者模型。在这些足部模型下方施加压力载荷后,在八个功能上有意义的足部区域内测量了冯·米塞斯等效应变和“簇体积”(即应变高于给定阈值的相邻单元的体积)。结果显示了所考虑的三名患者之间位置和应变值的变异性。这项研究还证实足部解剖结构对压疮风险有影响。

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