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Fabrication of rod-like nanocapsules based on polylactide and 3,4-dihydroxyphenylalanine for a drug delivery system

机译:基于聚丙交酯和3,4-二羟基苯基丙氨酸的棒状纳米胶囊的制备,用于药物递送系统

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摘要

3,4-Dihydroxyphenylalanine (DOPA) has the property of self-polymerization to form a PDOPA polymer with crosslinking structure, and coats onto surfaces of diverse substrates at alkaline pH values. In this study, rodlike nanocapsules were facilely fabricated based on a bio-based polymer by taking advantage of the DOPA properties. A block-like poly(lactide)-b-amidated poly(3,4-dihydroxyphenylalanine) (PLA-b-APDOPA) copolymer was firstly synthesized through an amidation reaction with pre-prepared functional PLA and APDOPA. The DOPA compound and obtained PLA-b-APDOPA copolymer were subsequently coated onto the silica nanorods to get PLA-b-APDOPA/PDOPA@SiO2 nanorods. Afterwards, PLA-b-APDOPA/PDOPA nanocapsules were formed by removal of the silica template. The structure of the copolymer was confirmed by a H-1 NMR spectrum. The formed nanorods and nanocapsules were observed by SEM and TEM. The structure and amount of the coated layers were determined by XPS and TGA. The results showed a rough surface of the nanorods after being coated with the polymers and the formation of a thin PDOPA layer and a thick PLA-b-APDOPA layer on the silica surface. Moreover, the formed nanocapsules had good biocompatibility. A model drug was successfully entrapped into the capsules, and could be slowly released from the nanocapsules in vitro depending on the pH buffer. The obtained rod-like nanocapsules could be used as carriers in biomedical fields.
机译:3,4-二羟基苯丙氨酸(DOPA)具有自我聚合的特性,可形成具有交联结构的PDOPA聚合物,并在碱性pH值下可涂覆到各种基材的表面上。在这项研究中,通过利用DOPA特性,基于生物聚合物轻松制造了棒状纳米胶囊。首先通过与预先制备的功能性PLA和APDOPA进行酰胺化反应,合成了一种嵌段状聚(丙交酯)-b酰胺化的聚(3,4-二羟基苯丙氨酸)(PLA-b-APDOPA)共聚物。随后将DOPA化合物和获得的PLA-b-APDOPA共聚物涂覆到二氧化硅纳米棒上,以获得PLA-b-APDOPA / PDOPA @ SiO 2纳米棒。之后,通过除去二氧化硅模板形成PLA-b-APDOPA / PDOPA纳米胶囊。共聚物的结构通过H-1 NMR光谱确认。通过SEM和TEM观察形成的纳米棒和纳米胶囊。通过XPS和TGA确定涂层的结构和量。结果显示,纳米棒被聚合物涂覆后表面粗糙,并且在二氧化硅表面上形成了薄的PDOPA层和厚的PLA-b-APDOPA层。此外,形成的纳米胶囊具有良好的生物相容性。模型药物已成功地包埋在胶囊中,根据pH缓冲液的不同,可以在体外从纳米胶囊中缓慢释放出来。所得的棒状纳米胶囊可用作生物医学领域的载体。

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