Gallab Mahmoud, Omata Seiji, Harada Kanako, Mitsuishi Mamoru, Sugimoto Koichiro, Ueta Takashi, Totsuka Kiyohito, Araki Fumiyuki, Takao Muneyuki, Aihara Makoto, Arai Fumihito
Nagoya University, Department of Micro-Nano Mechanical science and Engineering, Furo-cho, Chikusa-ku, Nagoya, Aichi, 464-8603, Japan.
Japan Science and Technology Agency (JST), Chiyoda, Tokyo 102-8666, Japan.
Micromachines (Basel). 2019 Apr 30;10(5):297. doi: 10.3390/mi10050297.
Three-dimensional (3D) microfluidic channels, which simulate human tissues such as blood vessels, are useful in surgical simulator models for evaluating surgical devices and training novice surgeons. However, animal models and current artificial models do not sufficiently mimic the anatomical and mechanical properties of human tissues. Therefore, we established a novel fabrication method to fabricate an eye model for use as a surgical simulator. For the glaucoma surgery task, the eye model consists of a sclera with a clear cornea; a 3D microchannel with a width of 200-500 µm, representing the Schlemm's canal (SC); and a thin membrane with a thickness of 40-132 µm, representing the trabecular meshwork (TM). The sclera model with a clear cornea and SC was fabricated by 3D molding. Blow molding was used to fabricate the TM to cover the inner surface of the sclera part. Soft materials with controllable mechanical behaviors were used to fabricate the sclera and TM parts to mimic the mechanical properties of human tissues. Additionally, to simulate the surgery with constraints similar to those in a real operation, the eye model was installed on a skull platform. Therefore, in this paper, we propose an integration method for fabricating an eye model that has a 3D microchannel representing the SC and a membrane representing the TM, to develop a glaucoma model for training novice surgeons.
模拟血管等人体组织的三维(3D)微流控通道,在用于评估手术器械和培训新手外科医生的手术模拟器模型中很有用。然而,动物模型和当前的人工模型不能充分模拟人体组织的解剖学和力学特性。因此,我们建立了一种新颖的制造方法来制造用作手术模拟器的眼部模型。对于青光眼手术任务,眼部模型由带有透明角膜的巩膜、宽度为200 - 500 µm代表施莱姆管(SC)的3D微通道以及厚度为40 - 132 µm代表小梁网(TM)的薄膜组成。带有透明角膜和SC的巩膜模型通过3D成型制造。吹塑用于制造覆盖巩膜部分内表面的TM。使用具有可控力学行为的软材料来制造巩膜和TM部分,以模拟人体组织的力学特性。此外,为了模拟与实际手术类似的受限手术,眼部模型安装在颅骨平台上。因此,在本文中,我们提出一种制造眼部模型的集成方法,该模型具有代表SC的3D微通道和代表TM的薄膜,以开发用于培训新手外科医生的青光眼模型。