Amiri Sara Azizian, Berckel Pieter Van, Lai Marco, Dankelman Jenny, Hendriks Benno H W
Department of Biomechanical Engineering, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology, The Netherlands.
Philips Research, IGT & US Devices and Systems Department, Eindhoven, The Netherlands.
Biomed Opt Express. 2022 Apr 4;13(5):2616-2643. doi: 10.1364/BOE.449637. eCollection 2022 May 1.
Emerging intraoperative tumor margin assessment techniques require the development of more complex and reliable organ phantoms to assess the performance of the technique before its translation into the clinic. In this work, electrically conductive tissue-mimicking materials (TMMs) based on fat, water and agar/gelatin were produced with tunable optical properties. The composition of the phantoms allowed for the assessment of tumor margins using diffuse reflectance spectroscopy, as the fat/water ratio served as a discriminating factor between the healthy and malignant tissue. Moreover, the possibility of using polyvinyl alcohol (PVA) or transglutaminase in combination with fat, water and gelatin for developing TMMs was studied. The diffuse spectral response of the developed phantom materials had a good match with the spectral response of porcine muscle and adipose tissue, as well as human breast tissue. Using the developed recipe, anatomically relevant heterogeneous breast phantoms representing the optical properties of different layers of the human breast were fabricated using 3D-printed molds. These TMMs can be used for further development of phantoms applicable for simulating the realistic breast conserving surgery workflow in order to evaluate the intraoperative optical-based tumor margin assessment techniques during electrosurgery.
新兴的术中肿瘤边缘评估技术需要开发更复杂、可靠的器官模型,以便在该技术应用于临床之前评估其性能。在这项工作中,制备了基于脂肪、水和琼脂/明胶的具有可调光学特性的导电组织模拟材料(TMM)。由于脂肪/水比例是健康组织和恶性组织之间的区分因素,这些模型的组成使得利用漫反射光谱评估肿瘤边缘成为可能。此外,还研究了将聚乙烯醇(PVA)或转谷氨酰胺酶与脂肪、水和明胶结合用于开发TMM的可能性。所开发的模型材料的漫反射光谱响应与猪肌肉和脂肪组织以及人类乳腺组织的光谱响应良好匹配。利用所开发的配方,使用3D打印模具制造了代表人类乳腺不同层光学特性的具有解剖学相关性的异质乳腺模型。这些TMM可用于进一步开发适用于模拟现实保乳手术流程的模型,以便在电外科手术期间评估基于光学的术中肿瘤边缘评估技术。