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聚电解质微胶囊组装的胶体囊泡:一种包封疏水性物质的新策略。

Polyelectrolyte Microcapsule-Assembled Colloidosomes: A Novel Strategy for the Encapsulation of Hydrophobic Substances.

作者信息

Musin Egor V, Dubrovskii Alexey V, Chebykin Yuri S, Kim Aleksandr L, Tikhonenko Sergey A

机构信息

Moscow Polytechnic University (Moscow Polytech), Bolshaya Semyonovskaya St., 38, Moscow 107023, Russia.

Institute of Theoretical and Experimental Biophysics Russian Academy of Science, Institutskaya St., 3, Puschino 142290, Moscow Region, Russia.

出版信息

Polymers (Basel). 2025 Jul 18;17(14):1975. doi: 10.3390/polym17141975.

Abstract

The encapsulation of hydrophobic substances remains a significant challenge due to limitations such as low loading efficiency, leakage, and poor distribution within microcapsules. This study introduces a novel strategy utilizing colloidosomes assembled from polyelectrolyte microcapsules (PMCs). PMCs were fabricated via layer-by-layer (LbL) assembly on manganese carbonate (MnCO) or calcium carbonate (CaCO) cores, followed by core dissolution. A solvent gradient replacement method was employed to substitute the internal aqueous phase of PMCs with kerosene, enabling the formation of colloidosomes through self-assembly upon resuspension in water. Comparative analysis revealed that MnCO-based PMCs with smaller diameters (2.5-3 µm vs. 4.5-5.5 µm for CaCO) exhibited 3.5-fold greater stability, attributed to enhanced inter-capsule interactions via electrostatic and hydrophobic forces. Confocal microscopy confirmed the structural integrity of colloidosomes, featuring a liquid kerosene core encapsulated within a PMC shell. Temporal stability studies indicated structural degradation within 30 min, though 5% of colloidosomes retained integrity post-water evaporation. PMC-based colloidosomes exhibit significant application potential due to their integration of colloidosome functionality with PMC-derived structural features-semi-permeability, tunable shell thickness/composition, and stimuli-responsive behavior-enabling their adaptability to diverse technological and biomedical contexts. This innovation holds promise for applications in drug delivery, agrochemicals, and environmental technologies, where controlled release and stability are critical. The findings highlight the role of core material selection and solvent engineering in optimizing colloidosome performance, paving the way for advanced encapsulation systems.

摘要

由于存在诸如低负载效率、泄漏以及在微胶囊内分布不佳等限制,疏水性物质的包封仍然是一项重大挑战。本研究引入了一种利用由聚电解质微胶囊(PMC)组装而成的胶体囊泡的新策略。通过在碳酸锰(MnCO)或碳酸钙(CaCO)核上逐层(LbL)组装来制备PMC,随后使核溶解。采用溶剂梯度置换法用煤油替代PMC的内部水相,在重新悬浮于水中时通过自组装形成胶体囊泡。对比分析表明,直径较小的基于MnCO的PMC(2.5 - 3 µm,而基于CaCO的为4.5 - 5.5 µm)表现出高3.5倍的稳定性,这归因于通过静电和疏水作用力增强的胶囊间相互作用。共聚焦显微镜证实了胶体囊泡的结构完整性,其特征是在PMC壳内封装有液体煤油核。时间稳定性研究表明在30分钟内结构会降解,不过5%的胶体囊泡在水蒸发后仍保持完整性。基于PMC的胶体囊泡由于其将胶体囊泡功能与PMC衍生的结构特征(半渗透性、可调壳厚度/组成以及刺激响应行为)相结合,展现出显著的应用潜力,使其能够适应各种技术和生物医学环境。这一创新在药物递送、农用化学品和环境技术等领域具有应用前景,在这些领域中控制释放和稳定性至关重要。研究结果突出了核心材料选择和溶剂工程在优化胶体囊泡性能方面的作用,为先进的包封系统铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f0a/12300669/079515bf9958/polymers-17-01975-g001.jpg

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