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首页> 外文期刊>Journal of Advanced Mechanical Design, Systems, and Manufacturing >Microsphere formation using SIFEL microfluidic devices with organic-solvent resistance
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Microsphere formation using SIFEL microfluidic devices with organic-solvent resistance

机译:使用具有耐有机溶剂性的SIFEL微流体装置形成微球

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Biodegradable microspheres have been gathering attention as a promising controlled release drug delivery system (DDS), since they can administrate with one injection, dissolve in a body, release drugs over time, and do not need to remove after use. To produce microspheres with high throughput and high uniformity, flow-focusing microfluidic devices have been widely employed. Although softlithography technology is a simply way to replicate flow-focusing microfluidic devices, there has yet to be reported organic-solvent resistant, flow-focusing microfluidic devices mainly due to lack of organic-solvent resistant elastomers. Here, we establish a method to fabricate flow-focusing microfluidic device using fluoroelastomer, SIFEL. We stacked a vinyl silicone end group rich layer and a silicone hybrid end group rich layer to seal SIFEL microfluidic devices by using hydrosilylation between two layers. Then, by flowing chloroform, we experimentally verified that SIFEL microfluidic devices did not swell, whereas polydimethylsiloxane (PDMS) microfluidic device showed swelling. When we flowed polyvinyl alcohol (PVA) 1% aqueous solution flow in continuous phase and 1% poly lactic-co-glycolic acid (PLGA) in chloroform flow in discontinuous phase, we obtained PGLA microspheres with diameter of 67.0±1.6 μm. Therefore, we envision that the SIFEL device can be a powerful tool for development of controlled-release DDS for water insoluble drugs.
机译:可生物降解的微球作为一种有前途的控释药物递送系统(DDS)受到了广泛关注,因为它们可以一次注射给药,在体内溶解,随着时间的推移释放药物,并且在使用后无需去除。为了生产具有高通量和高均匀度的微球,流聚焦微流体装置已被广泛使用。尽管软光刻技术是复制流动聚焦微流体装置的简单方法,但尚未报道有耐有机溶剂流动聚焦微流装置的主要原因是缺乏耐有机溶剂弹性体。在这里,我们建立了一种使用含氟弹性体SIFEL制造流动聚焦微流体装置的方法。我们通过使用两层之间的氢化硅烷化反应,堆叠了一层乙烯基有机硅端基丰富的层和一层有机硅杂化端基丰富的层,以密封SIFEL微流体器件。然后,通过流动的氯仿,我们通过实验验证了SIFEL微流体装置不会膨胀,而聚二甲基硅氧烷(PDMS)微流体装置则显示出膨胀。当我们使聚乙烯醇(PVA)在连续相中流过1%的水溶液,在不连续相中流过氯仿中的1%聚乳酸-乙醇酸(PLGA)时,我们得到了直径为67.0±1.6μm的PGLA微球。因此,我们认为SIFEL设备可以成为开发用于水不溶性药物的控释DDS的强大工具。

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