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Microfabrication of Micropore Array for Cell Separation and Cell Assay

机译:用于细胞分离和细胞测定的微孔阵列的微细加工

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摘要

Micropore arrays have attracted a substantial amount of attention due to their strong capability to separate specific cell types, such as rare tumor cells, from a heterogeneous sample and to perform cell assays on a single cell level. Micropore array filtration has been widely used in rare cell type separation because of its potential for a high sample throughput, which is a key parameter for practical clinical applications. However, most of the present micropore arrays suffer from a low throughput, resulting from a low porosity. Therefore, a robust microfabrication process for high-porosity micropore arrays is urgently demanded. This study investigated four microfabrication processes for micropore array preparation in parallel. The results revealed that the Parylene-C molding technique with a silicon micropillar array as the template is the optimized strategy for the robust preparation of a large-area and high-porosity micropore array, along with a high size controllability. The Parylene-C molding technique is compatible with the traditional micromechanical system (MEMS) process and ready for scale-up manufacture. The prepared Parylene-C micropore array is promising for various applications, such as rare tumor cell separation and cell assays in liquid biopsy for cancer precision medicine.
机译:由于其从异质样品中分离特定细胞类型(例如稀有肿瘤细胞)并在单个细胞水平上进行细胞测定的强大能力,微孔阵列引起了广泛的关注。微孔阵列过滤由于其具有高样品通量的潜力而被广泛用于稀有细胞类型分离,这是实际临床应用的关键参数。然而,大多数当前的微孔阵列由于低孔隙率而遭受低通量的困扰。因此,迫切需要用于高孔隙率微孔阵列的鲁棒的微制造工艺。这项研究调查了并行进行微孔阵列制备的四个微细加工工艺。结果表明,以硅微柱阵列为模板的Parylene-C成型技术是稳健制备大面积,高孔隙率微孔阵列以及高尺寸可控性的优化策略。 Parylene-C成型技术与传统的微机械系统(MEMS)工艺兼容,并且可以进行大规模生产。制备的Parylene-C微孔阵列有望用于各种应用,例如罕见的肿瘤细胞分离和用于癌症精密医学的液体活检中的细胞测定。

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