Leibinger Alexander, Forte Antonio E, Tan Zhengchu, Oldfield Matthew J, Beyrau Frank, Dini Daniele, Rodriguez Y Baena Ferdinando
Department of Mechanical Engineering, Imperial College London, Exhibition Road, South Kensington, London, SW7 2AZ, UK.
Lehrstuhl für Technische Thermodynamik, Otto-von-Guericke-Universität Magdeburg, Magdeburg, Germany.
Ann Biomed Eng. 2016 Aug;44(8):2442-2452. doi: 10.1007/s10439-015-1523-0. Epub 2015 Dec 14.
Phantoms are common substitutes for soft tissues in biomechanical research and are usually tuned to match tissue properties using standard testing protocols at small strains. However, the response due to complex tool-tissue interactions can differ depending on the phantom and no comprehensive comparative study has been published to date, which could aid researchers to select suitable materials. In this work, gelatin, a common phantom in literature, and a composite hydrogel developed at Imperial College, were matched for mechanical stiffness to porcine brain, and the interactions during needle insertions within them were analyzed. Specifically, we examined insertion forces for brain and the phantoms; we also measured displacements and strains within the phantoms via a laser-based image correlation technique in combination with fluorescent beads. It is shown that the insertion forces for gelatin and brain agree closely, but that the composite hydrogel better mimics the viscous nature of soft tissue. Both materials match different characteristics of brain, but neither of them is a perfect substitute. Thus, when selecting a phantom material, both the soft tissue properties and the complex tool-tissue interactions arising during tissue manipulation should be taken into consideration. These conclusions are presented in tabular form to aid future selection.
在生物力学研究中,仿体是软组织常用的替代物,通常使用标准测试方案在小应变下对其进行调整以匹配组织特性。然而,由于复杂的工具-组织相互作用所产生的响应可能因仿体而异,且迄今为止尚未发表全面的比较研究,而此类研究有助于研究人员选择合适的材料。在这项工作中,将文献中常见的仿体明胶与帝国理工学院研发的复合水凝胶在机械刚度方面与猪脑进行匹配,并分析了在它们内部进行针插入时的相互作用。具体而言,我们检测了针对脑和仿体的插入力;我们还通过基于激光的图像相关技术结合荧光珠测量了仿体内的位移和应变。结果表明,明胶和脑的插入力非常接近,但复合水凝胶能更好地模拟软组织的粘性特性。两种材料都匹配脑的不同特征,但它们都不是完美的替代品。因此,在选择仿体材料时,应同时考虑软组织特性以及在组织操作过程中产生的复杂工具-组织相互作用。这些结论以表格形式呈现,以帮助未来的选择。