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首页> 外文期刊>Microfluidics and nanofluidics >Development of microfluidic alginate microbead generator tunable by pulsed airflow injection for the microencapsulation of cells
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Development of microfluidic alginate microbead generator tunable by pulsed airflow injection for the microencapsulation of cells

机译:脉冲气流注入可调谐微流藻酸盐微珠发生器的开发,用于细胞的微囊化

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摘要

Recently, microbead generation and microencapsulation of cells using microfluidic technology have been actively pursued for various applications. However, most of the proposed systems are not only technically demanding, but might also be harmful to the encapsulated cells. To tackle these issues, this study reports a microfluidic alginate microbead generator consisting of a polydimethylsiloxane (PDMS) microfluidic chip and an integrated quartz micro-capillary tube. The working principle is based on the use of a pulsed airflow to segment a continuous alginate suspension flow to form suspension fragments in a microchannel and then alginate microbeads when they were delivered out the microfluidic system to a sterile calcium chloride solution through a microcapillary tube. In this study, the alginate suspension fragments with varied sizes in the microchannel can be generated either by modulating the alginate suspension flow rate or the pulsation frequency of airflow injection. By fine tuning the size of them, the alginate microbeads can be generated in a size-controllable manner. Results showed that alginate microbeads with the size ranging from 150 to 370 μm in diameter can be generated at the suspension flow rate and airflow injection frequency ranges of 2-4 μl/min and 0.6-35 Hz, respectively. Besides, the alginate micro-beads generated by the system were tested with excellent size uniformity (CV: 3.1-5.1%). Moreover, its application for the microencapsulation of chondrocytes in alginate microbeads was also demonstrated with high cell viability (96 ± 2%). As a whole, the proposed device has paved an alternative route to perform alginate microbead generationrnor microencapsulation of cells in a simple, continuous, controllable, uniform, cell friendly, and less contaminated manner.
机译:近来,已经针对各种应用积极地追求使用微流体技术的细胞微珠的产生和微囊化。但是,大多数提议的系统不仅在技术上要求很高,而且可能对封装的细胞有害。为了解决这些问题,本研究报告了一种由聚二甲基硅氧烷(PDMS)微流控芯片和集成石英微毛细管组成的微流藻酸微珠发生器。工作原理是基于使用脉冲气流来分割连续的藻酸盐悬浮液流,以在微通道中形成悬浮液碎片,然后将藻酸盐微珠从微流控系统中通过微毛细管输送到无菌氯化钙溶液中时形成藻酸盐微珠。在这项研究中,可以通过调节藻酸盐悬浮液的流速或气流注入的脉动频率来生成微通道中大小不同的藻酸盐悬浮液碎片。通过微调它们的尺寸,可以以尺寸可控的方式产生藻酸盐微珠。结果表明,在悬浮液流速和气流注入频率范围分别为2-4μl/ min和0.6-35 Hz的情况下,可以生成直径范围为150至370μm的藻酸盐微珠。此外,系统产生的藻酸盐微珠具有出色的尺寸均匀性(CV:3.1-5.1%)。此外,还证明了其在藻酸盐微珠中微囊化软骨细胞中的应用,具有很高的细胞活力(96±2%)。总体而言,所提出的装置为以简单,连续,可控,均匀,对细胞友好且污染少的方式进行藻酸盐微珠的产生或微囊化细胞铺平了一条替代途径。

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