A Novel System for Fabricating Microspheres with Microelectromechanical System-Based Bioprinting Technology.

IF 5 Q1 ENGINEERING, BIOMEDICAL BME frontiers Pub Date : 2024-11-20 eCollection Date: 2024-01-01 DOI:10.34133/bmef.0076
Yifeng Xu, Bao Jiang, Fangfang Liu, Hua Zhang, Dan Li, Xiaohui Tang, Xiuming Yang, Yan Sheng, Xuanye Wu, Nan Shi
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Abstract

Objective and Impact Statement: The microspheres were widely utilized in the field of life sciences, and we have developed an innovative microelectromechanical system (MEMS)-based bioprinting technology (MBT) system for the preparation of the microspheres. The microspheres can be automatically and high-throughput produced with this cutting-edge system. Introduction and Methods: This paper mainly introduced a novel, efficient, and cost-effective approach for the microsphere fabrication with the MBT system. In this work, the whole microsphere production equipment was built and the optimal conditions (like concentration, drying temperature, frequency, and voltage) for generating uniform hydroxypropyl cellulose-cyclosporine A (HPC-CsA) and poly-l-lactic acid (PLLA) microspheres were explored. Results: Results demonstrated that the optimal uniformity of HPC-CsA microspheres was achieved at 2% (w/v) HPC-CsA mixture, 45 °C (drying temperature), 1,000 Hz (frequency), and 25 V (voltage amplitude). CsA microspheres [coefficient of variation (CV): ~9%] are successfully synthesized, and the drug encapsulation rate was 84.8%. The methodology was further used to produce PLLA microspheres with a diameter of ~2.55 μm, and the best CV value achieved 6.84%. Conclusion: This investigation fully highlighted the integration of MEMS and bioprinting as a promising tool for the microsphere fabrication, and this MBT system had huge potential applications in pharmaceutical formulations and medical aesthetics.

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利用基于微机电系统的生物打印技术制造微球的新型系统。
目标和影响说明:微球在生命科学领域得到广泛应用,我们开发了一种基于微机电系统(MEMS)的创新型生物打印技术(MBT)系统,用于制备微球。我们开发了一种创新的基于微机电系统(MEMS)的生物打印技术(MBT)系统,用于制备微球。这种先进的系统可以自动、高通量地制备微球。引言和方法:本文主要介绍了一种利用 MBT 系统制备微球的新颖、高效、经济的方法。在这项工作中,建立了整个微球生产设备,并探索了生成均匀羟丙基纤维素-环孢素 A(HPC-CsA)和聚乳酸(PLLA)微球的最佳条件(如浓度、干燥温度、频率和电压)。结果结果表明,在 2% (w/v) HPC-CsA 混合物、45 °C(干燥温度)、1,000 Hz(频率)和 25 V(电压振幅)条件下,HPC-CsA 微球达到了最佳均匀度。成功合成了 CsA 微球[变异系数 (CV):~9%],药物包封率为 84.8%。该方法进一步用于生产直径约为 2.55 μm 的 PLLA 微球,最佳 CV 值达到 6.84%。结论这项研究充分凸显了微机电系统与生物打印技术的结合,是一种前景广阔的微球制造工具,这种 MBT 系统在药物制剂和医学美容方面具有巨大的应用潜力。
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CiteScore
7.10
自引率
0.00%
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审稿时长
16 weeks
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