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微流控辅助合成具有改善负载特性的碳酸钙亚微米颗粒。

Microfluidically Assisted Synthesis of Calcium Carbonate Submicron Particles with Improved Loading Properties.

作者信息

Ermakov Alexey V, Chapek Sergei V, Lengert Ekaterina V, Konarev Petr V, Volkov Vladimir V, Artemov Vladimir V, Soldatov Mikhail A, Trushina Daria B

机构信息

Institute of Molecular Theranostics, First Moscow State Medical University, 119991 Moscow, Russia.

The Smart Materials Research Institute, Southern Federal University, Sladkova 178/24, 344090 Rostov-on-Don, Russia.

出版信息

Micromachines (Basel). 2023 Dec 21;15(1):16. doi: 10.3390/mi15010016.

Abstract

The development of advanced methods for the synthesis of nano- and microparticles in the field of biomedicine is of high interest due to a range of reasons. The current synthesis methods may have limitations in terms of efficiency, scalability, and uniformity of the particles. Here, we investigate the synthesis of submicron calcium carbonate using a microfluidic chip with a T-shaped oil supply for droplet-based synthesis to facilitate control over the formation of submicron calcium carbonate particles. The design of the chip allowed for the precise manipulation of reaction parameters, resulting in improved porosity while maintaining an efficient synthesis rate. The pore size distribution within calcium carbonate particles was estimated via small-angle X-ray scattering. This study showed that the high porosity and reduced size of the particles facilitated the higher loading of a model peptide: 16 vs. 9 mass.% for the particles synthesized in a microfluidic device and in bulk, correspondingly. The biosafety of the developed particles in the concentration range of 0.08-0.8 mg per plate was established by the results of the cytotoxicity study using mouse fibroblasts. This innovative approach of microfluidically assisted synthesis provides a promising avenue for future research in the field of particle synthesis and drug delivery systems.

摘要

由于一系列原因,生物医学领域中纳米和微米颗粒合成先进方法的开发备受关注。当前的合成方法在颗粒的效率、可扩展性和均匀性方面可能存在局限性。在此,我们研究了使用具有T形油供应的微流控芯片进行亚微米碳酸钙的合成,用于基于液滴的合成,以促进对亚微米碳酸钙颗粒形成的控制。芯片的设计允许对反应参数进行精确操纵,在保持高效合成速率的同时提高了孔隙率。通过小角X射线散射估计碳酸钙颗粒内的孔径分布。这项研究表明,颗粒的高孔隙率和减小的尺寸有利于模型肽的更高负载:在微流控装置中合成的颗粒和批量合成的颗粒分别为16质量%和9质量%。使用小鼠成纤维细胞进行的细胞毒性研究结果确定了所开发颗粒在每板0.08 - 0.8毫克浓度范围内的生物安全性。这种微流控辅助合成的创新方法为颗粒合成和药物递送系统领域的未来研究提供了一条有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7db1/10818696/60d90ee845e7/micromachines-15-00016-g001.jpg

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