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基于螺旋弹簧驱动的惯性微流控芯片的尺寸分离和富集生物细胞。

Coil spring-powered pump with inertial microfluidic chip for size-based isolation and enrichment of biological cells.

机构信息

School of Mechanical Engineering, Yonsei University, Republic of Korea.

College of Medicine, Yonsei University, Republic of Korea.

出版信息

Analyst. 2022 Dec 5;147(24):5710-5717. doi: 10.1039/d2an01380k.

Abstract

Microfluidic chips have been widely used for diagnostics using pretreatment of biological samples; however, biologists and clinical researchers have difficulties using them in resource-limited settings. Sample injection systems for microfluidic chips are bulky, expensive, electricity-powered, and complex. A coiled spring-powered device, which can be used to isolate variously sized cells with high efficiency continuously and passively, was developed for portable, low-cost, electricity-free, and simple sample injection. The flow driving power was provided by releasing the compression spring in the mechanical syringe driver with a one-click action. In general, a syringe pump generates a stable passive flow rate. However, the syringe pumps are large in size and expensive because they have many functions such as infusion/withdrawal flow injection and the use of syringes of various sizes, allowing them to be applied in a variety of applications performed in the laboratory. In addition, it is not suitable for portable devices because of the considerable amount of electric power required. To overcome these drawbacks, we developed a device prototype that sorts different-sized particles and separates rare tumor cells or blood cells from blood with high efficiency. The performance of the coiled spring-powered device was evaluated and found to be comparable with that of syringe pump-powered devices. In situations where trained personnel cannot handle microfluidic chips for isolating circulating biomarkers (CTCs, WBCs, or plasma) from blood samples, the coiled spring-powered device can provide diagnostic tools, especially in resource-limited countries.

摘要

微流控芯片已广泛应用于生物样本预处理的诊断;然而,生物学家和临床研究人员在资源有限的环境中使用它们存在困难。微流控芯片的样品注入系统体积庞大、昂贵、需要电力且复杂。我们开发了一种螺旋弹簧驱动的装置,可用于连续、被动地高效分离不同大小的细胞,该装置可用于便携式、低成本、无电且简单的样品注入。流动驱动力通过一键操作释放机械注射器驱动器中的压缩弹簧来提供。一般来说,注射器泵可产生稳定的被动流速。然而,注射器泵体积大且昂贵,因为它们具有许多功能,如输注/抽取流量注射以及使用各种大小的注射器,使其可应用于实验室中进行的各种应用。此外,由于需要相当大的电力,它不适合便携式设备。为了克服这些缺点,我们开发了一种设备原型,可高效地对不同大小的颗粒进行分类,并从血液中分离出罕见的肿瘤细胞或血细胞。评估了螺旋弹簧驱动装置的性能,发现其性能可与注射器泵驱动装置相媲美。在没有经过培训的人员无法处理用于从血液样本中分离循环生物标志物(CTC、WBC 或血浆)的微流控芯片的情况下,螺旋弹簧驱动装置可为诊断工具提供支持,尤其是在资源有限的国家。

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