迈向机械相容性:用于腹疝修补的植入物的优化。

IF 3.4 4区 医学 Q2 ENGINEERING, BIOMEDICAL
Szymon Kalinowski, Katarzyna Szepietowska, Éric Florentin, Izabela Lubowiecka
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引用次数: 0

摘要

用合成植入物有效治疗腹疝需要一种与组织生物和机械兼容的假体材料。机械相容性尤其重要,因为人体腹壁是一个复杂的多层结构,其特性可能具有尚未完全了解的个体特征。为了解决这个问题,我们提出了一种新的方法,通过局部修改种植体的厚度来适应所施加的载荷,从而优化疝修补的种植体设计。在优化过程中,相容性标准被转化为一个目标函数,该目标函数要最小化。目标函数旨在平衡和最小化组织-种植体界面上的力,并最小化种植体挠度。这在不妨碍功能的情况下减少了对失败的脆弱性。输入数据取自使用数字图像相关技术对人体受试者进行的体内测试,并应用于通过有限元方法定义的植入物的计算模型。结果表明,材料分布在两个垂直方向(即正交异性)和个体之间具有不同特性的模型之间存在差异,这表明可能存在针对患者的植入物设计和针对患者的疝修复方法。这种方法考虑了腹壁的异质性和各向异性,在实践中可能有助于降低腹壁疝的复发率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Towards Mechanical Compatibility: Optimization of an Implant Used in Ventral Hernia Repair

Towards Mechanical Compatibility: Optimization of an Implant Used in Ventral Hernia Repair

Effective treatment of abdominal hernia with synthetic implants requires a prosthetic material biologically and mechanically compatible with the tissue. The mechanical compatibility is particularly important because the human abdominal wall is a complex multilayer structure and its properties may have individual characteristics that are not fully known. To address this issue, we propose a novel approach to optimal implant design for hernia repair by modifying locally the implant thickness to adapt it to the applied loads. Compatibility criteria are translated to an objective function that is to be minimized in the optimization procedure. The objective function is designed to equalize and minimize forces at the tissue-implant interface and minimize implant deflection. This reduces vulnerability to failure without hindering functionality. The input data are taken from in vivo tests on human subjects performed using digital image correlation and applied to a computational model of the implant defined by means of the Finite Element Method. The results show that the material distribution varies across models with different properties in two perpendicular directions (i.e., orthotropy) and across individuals, suggesting the potential for patient-specific design of the implant and a patient-specific approach to hernia repair. This approach takes into account abdominal wall heterogeneity and anisotropy, which in practice may help to reduce the ventral hernia recurrence rate.

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来源期刊
CiteScore
7.50
自引率
2.90%
发文量
199
审稿时长
12 months
期刊介绍: Journal of Biomedical Materials Research – Part B: Applied Biomaterials is a highly interdisciplinary peer-reviewed journal serving the needs of biomaterials professionals who design, develop, produce and apply biomaterials and medical devices. It has the common focus of biomaterials applied to the human body and covers all disciplines where medical devices are used. Papers are published on biomaterials related to medical device development and manufacture, degradation in the body, nano- and biomimetic- biomaterials interactions, mechanics of biomaterials, implant retrieval and analysis, tissue-biomaterial surface interactions, wound healing, infection, drug delivery, standards and regulation of devices, animal and pre-clinical studies of biomaterials and medical devices, and tissue-biopolymer-material combination products. Manuscripts are published in one of six formats: • original research reports • short research and development reports • scientific reviews • current concepts articles • special reports • editorials Journal of Biomedical Materials Research – Part B: Applied Biomaterials is an official journal of the Society for Biomaterials, Japanese Society for Biomaterials, the Australasian Society for Biomaterials, and the Korean Society for Biomaterials. Manuscripts from all countries are invited but must be in English. Authors are not required to be members of the affiliated Societies, but members of these societies are encouraged to submit their work to the journal for consideration.
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