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Design and Parameter Study of Integrated Microfluidic Platform for CTC Isolation and Enquiry; A Numerical Approach

机译:用于CTC隔离和查询的集成微流平台的设计和参数研究;数值方法

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摘要

Being the second cause of mortality across the globe, there is now a persistent effort to establish new cancer medication and therapies. Any accomplishment in treating cancers entails the existence of accurate identification systems empowering the early diagnosis. Recent studies indicate CTCs’ potential in cancer prognosis as well as therapy monitoring. The chief shortcoming with CTCs is that they are exceedingly rare cells in their clinically relevant concentration. Here, we simulated a microfluidic construct devised for immunomagnetic separation of the particles of interest from the background cells. This separation unit is integrated with a mixer subunit. The mixer is envisioned for mixing the CTC enriched stream with lysis buffer to extract the biological material of the cell. Some modification was proposed on mixing geometry improving the efficacy of the functional unit. A valuation of engaged forces was made and some forces were neglected due to their order of magnitude. The position of the magnet was also optimized by doing parametric study. For the mixer unit, the effect of applied voltage and frequency on mixing index was studied to find the optimal voltage and frequency which provides better mixing. Above-mentioned studies were done on isolated units and the effect of each functional unit on the other is not studied. As the final step, an integrated microfluidic platform composed of both functional subunits was simulated simultaneously. To ensure the independence of results from the grid, grid studies were also performed. The studies carried out on the construct reveal its potential for diagnostic application.
机译:作为全球第二大死亡原因,现在人们一直在努力建立新的癌症药物和疗法。治疗癌症的任何成就都需要有能够早期诊断的精确识别系统。最近的研究表明,四氯化碳在癌症预后以及治疗监测中具有潜力。 CTC的主要缺点是它们在临床上相关浓度下是极为罕见的细胞。在这里,我们模拟了一种微流体构建体,该构建体用于从背景细胞免疫磁分离目标颗粒。该分离单元与混合器子单元集成在一起。设想混合器用于将富含CTC的料流与裂解缓冲液混合以提取细胞的生物材料。在混合几何形状方面提出了一些改进,以提高功能单元的效率。对参与部队进行了估价,由于数量级的原因,一些部队被忽略了。磁体的位置也通过进行参数研究得到了优化。对于混合器单元,研究了施加电压和频率对混合指数的影响,以找到可提供更好混合效果的最佳电压和频率。上述研究是针对隔离单元进行的,没有研究每个功能单元对另一个单元的影响。作为最后一步,同时模拟了由两个功能亚基组成的集成微流体平台。为了确保网格结果的独立性,还进行了网格研究。对构建体进行的研究揭示了其在诊断应用中的潜力。

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