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SU-8-based immunoisolative microcontainer with nanoslots defined by nanoimprint lithography

机译:基于SU-8的免疫隔离微容器具有通过纳米压印光刻技术定义的纳米槽

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摘要

Cells can secrete biotherapeutic molecules that can replace or restore host function. The transplantation of such cells is a promising therapeutic modality for the treatment of several diseases including type 1 diabetes mellitus. These cellular grafts are encapsulated in semipermeable and immunoisolative membranes to protect them from the host immune system, while allowing the transport of nutrients and small molecules that are required for cell survival and function. The authors report on SU-8-based biocompatible immunoisolative cuboid microcontainers for cell transplantation. Each microcontainer comprises a 300×300×250 or a 1100×1100×250 μm3 SU-8 hollowed cuboid base that houses the cells and an optically transparent SU-8-based nanoporous lid that closes the device. The hollowed cuboid base was formed by conventional optical lithography to have 8 nl (200×200×200 μm3) encapsulation volume for cellular payload. The lid comprises a thick SU-8 slab with an array of cylindrical wells, whose bottom surface is sealed with a thin nanoporous SU-8 membrane. The nanoporous membrane was created from a 100 nm grating (width and spacing) initial silicon mold subjected to a repeated cycle of oxidation and wet etching to achieve a 20 nm wide and 200 nm pitch nano silicon grating. Nanoimprinting and oblique-angle metal deposition, followed by inductively coupled plasma etching were utilized to create 15 nm wide and 350–450 nm deep nanoslots in the thin SU-8 membrane. Isolated mouse islets were encapsulated in the hollowed cuboid base and the nanoporous lid was assembled on top. The penetration of large and small molecules into the microcontainer was observed with fluorescence.
机译:细胞可以分泌可替代或恢复宿主功能的生物治疗分子。这种细胞的移植是用于治疗包括1型糖尿病在内的几种疾病的有前途的治疗方式。这些细胞移植物被封装在半透性和免疫隔离膜中,以保护它们免受宿主免疫系统的侵害,同时允许细胞存活和功能所需的营养物质和小分子的运输。作者报告了用于细胞移植的基于SU-8的生物相容性免疫隔离长方体微容器。每个微容器都包括一个300×300×250或1100×1100×250μm 3 SU-8中空的长方体基座,该基座容纳细胞以及一个光学透明的基于SU-8的纳米孔盖,该盖可封闭设备。空心长方体基座是通过传统的光刻技术形成的,具有8 nl(200×200×200μm 3 )封装体积,用于细胞有效载荷。盖子由厚厚的SU-8平板和一排圆柱孔组成,其底部表面用薄的纳米多孔SU-8膜密封。纳米多孔膜是由100纳米光栅(宽度和间距)的初始硅模具制成的,该硅模具经过反复的氧化和湿法蚀刻循环,以获得20纳米宽和200纳米间距的纳米硅光栅。纳米压印和斜角金属沉积,然后进行电感耦合等离子体刻蚀,可在SU-8薄膜中形成15 nm宽和350-450 nm深的纳米缝隙。将分离的小鼠胰岛封装在中空的长方体底座中,并将纳米孔盖组装在顶部。用荧光观察到大分子和小分子渗透到微容器中。

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