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一种基于膜过滤的哺乳动物细胞生物传感器,可实现 3D 培养和病原体检测。

A Membrane Filter-Assisted Mammalian Cell-Based Biosensor Enabling 3D Culture and Pathogen Detection.

机构信息

BK21 Plus Program, Department of Senior Healthcare, Graduate School, Eulji University, Daejeon 34824, Korea.

Department of Biomedical Laboratory Science, College of Health Science, Eulji University, 553 Sanseong-Daero, Sujeong-gu, Seongnam 13135, Korea.

出版信息

Sensors (Basel). 2021 Apr 26;21(9):3042. doi: 10.3390/s21093042.

Abstract

We have developed a membrane filter-assisted cell-based biosensing platform by using a polyester membrane as a three-dimensional (3D) cell culture scaffold in which cells can be grown by physical attachment. The membrane was simply treated with ethanol to increase surficial hydrophobicity, inducing the stable settlement of cells via gravity. The 3D membrane scaffold was able to provide a relatively longer cell incubation time (up to 16 days) as compared to a common two-dimensional (2D) cell culture environment. For a practical application, we fabricated a cylindrical cartridge to support the scaffold membranes stacked inside the cartridge, enabling not only the maintenance of a certain volume of culture media but also the simple exchange of media in a flow-through manner. The cartridge-type cell-based analytical system was exemplified for pathogen detection by measuring the quantities of toll-like receptor 1 (TLR1) induced by applying a lysate of and live , respectively, providing a fast, convenient colorimetric TLR1 immunoassay. The color images of membranes were digitized to obtain the response signals. We expect the method to further be applied as an alternative tool to animal testing in various research areas such as cosmetic toxicity and drug efficiency.

摘要

我们开发了一种基于膜过滤的细胞生物传感平台,使用聚酯膜作为三维(3D)细胞培养支架,细胞可以通过物理附着在支架上生长。该膜经乙醇简单处理以增加表面疏水性,通过重力诱导细胞稳定沉降。与常见的二维(2D)细胞培养环境相比,3D 膜支架能够提供相对更长的细胞孵育时间(长达 16 天)。为了实际应用,我们制造了一个圆柱形盒体以支撑盒体内堆叠的支架膜,不仅可以维持一定体积的培养基,还可以通过流通方式简单地更换培养基。该盒式基于细胞的分析系统通过测量应用 和 活体制备物的裂解物分别诱导的 toll 样受体 1(TLR1)的量来例证病原体检测,提供快速、方便的比色 TLR1 免疫分析。膜的彩色图像被数字化以获得响应信号。我们期望该方法在化妆品毒性和药物效率等各个研究领域进一步作为动物试验的替代工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/59e1/8123675/8357d0e20b2d/sensors-21-03042-g001.jpg

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