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Preparation of Liposomes Modified with Lipopeptides Using a Supercritical Carbon Dioxide Reverse-phase Evaporation Method

机译:超临界二氧化碳反相蒸发法制备脂肽修饰的脂质体

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摘要

Although liposomes are considered to be one of the most promising carriers for drug delivery systems (DDS), they have drawbacks such as insufficient drug-entrapment efficiency and long-term stability. The objectives of this study are to improve the trapping efficiency by addition of lipopeptides (LPs), and using a supercritical CO_2 reverse-phase evaporation (SCRPE) process, along with incorporation of PEG-modified phospholipids to improve long-term stability. In this study, bovine serum albumin (BSA) was used as a model drug substance for entrapment by liposomes. Improvements in the entrapment efficiency and stability of liposomes were achieved by modification with LPs and use of a SCRPE preparation process. The BSA-entrapment efficiency of liposomes modified with cationic LPs with arginine residues, as a result of their ionic interactions, was six times that of liposomes prepared by the Bangham method. Use of a SCRPE method along with LP modification further enhanced entrapment and enabled spontaneous formation of unilamellar liposomes with long-term stability. Liposomes consisting of DPPC/Chol/C16-Arg2/DSPE-PEG2000 (60/30/5/5), with up to 70% entrapment efficiency for BSA and a stability level of 90% for over 40 h, were obtained. DSC and SAXS analyses indicated that certain amounts of LP in the DPPC induced phase-transitional and structural changes in the lamellar membrane, and these changes improved the DDS carrier properties. The SCRPE method provides organic-solvent-free liposomes, and the LPs for the liposome modification are derivatives of amino acids and fatty acids, which are sustainable and biocompatible materials. This study therefore suggests that there are opportunities for the development of novel DDS carriers with excellent performance and which address environmental concerns.
机译:尽管脂质体被认为是药物递送系统(DDS)最具前景的载体之一,但它们具有诸如药物吸收效率不足和长期稳定性等缺点。这项研究的目的是通过添加脂肽(LP)并使用超临界CO_2反相蒸发(SCRPE)工艺以及掺入PEG修饰的磷脂来改善长期稳定性,从而提高捕集效率。在这项研究中,牛血清白蛋白(BSA)被用作脂质体截留的模型药物。通过用LPs修饰和使用SCRPE制备方法,可以提高脂质体的包封效率和稳定性。由于其离子相互作用,用带有精氨酸残基的阳离子LP修饰的脂质体的BSA包埋效率是通过Bangham方法制备的脂质体的六倍。 SCRPE方法与LP修饰的结合使用进一步增强了包封,并能够自发形成具有长期稳定性的单层脂质体。获得了由DPPC / Chol / C16-Arg2 / DSPE-PEG2000(60/30/5/5)组成的脂质体,其对BSA的包封率高达70%,并且在40小时内的稳定度为90%。 DSC和SAXS分析表明,DPPC中一定量的LP引起了层状膜的相变和结构变化,这些变化改善了DDS载体的性能。 SCRPE方法提供了无有机溶剂的脂质体,用于脂质体修饰的LPs是氨基酸和脂肪酸的衍生物,它们是可持续的生物相容性材料。因此,这项研究表明,有机会开发具有出色性能并解决环境问题的新型DDS载体。

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  • 来源
    《Journal of Oleo Science》 |2011年第5期|p.209-215|共7页
  • 作者单位

    Department of Pure and Applied Chemistry, Tokyo University of Science (2641 Yamazaki, Noda, Chiba 278-8510, JAPAN);

    Department of Pharmaceutical Sciences, Toho University (2-2-1 Miyama, Funabashi, Chiba, 274-8510, JAPAN);

    Department of Pharmaceutical Sciences, Toho University (2-2-1 Miyama, Funabashi, Chiba, 274-8510, JAPAN);

    Department of Pharmaceutical Sciences, Toho University (2-2-1 Miyama, Funabashi, Chiba, 274-8510, JAPAN);

    Department of Pure and Applied Chemistry, Tokyo University of Science (2641 Yamazaki, Noda, Chiba 278-8510, JAPAN);

    Department of Pure and Applied Chemistry, Tokyo University of Science (2641 Yamazaki, Noda, Chiba 278-8510, JAPAN);

    Department of Pure and Applied Chemistry, Tokyo University of Science (2641 Yamazaki, Noda, Chiba 278-8510, JAPAN);

    Department of Pure and Applied Chemistry, Tokyo University of Science (2641 Yamazaki, Noda, Chiba 278-8510, JAPAN);

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    liposome; lipopeptide; entrapment efficiency; supercritical co2 reverse-phase evaporation (scrpe); drug delivery system (dds);

    机译:脂质体脂肽包封率;超临界二氧化碳反相蒸发(scrpe);药物输送系统(dds);

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