膜成分可优化小檗碱在脂质体中的封装

IF 4.5 2区 医学 Q2 MEDICINE, RESEARCH & EXPERIMENTAL
Molecular Pharmaceutics Pub Date : 2024-11-04 Epub Date: 2024-10-19 DOI:10.1021/acs.molpharmaceut.4c00830
Flavio Costa, Giorgia Giorgini, Cristina Minnelli, Giovanna Mobbili, Carlo Guardiani, Alberto Giacomello, Roberta Galeazzi
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引用次数: 0

摘要

小檗碱(BBR)是一种天然分子,具有显著的药理特性,包括防止革兰氏阴性细菌产生抗药性。然而,小檗碱的口服生物利用度较低,导致人体吸收和药效受损。研究表明,脂质体与其他药物结合使用,可提高药物的可用性,是一种用于靶组织并减少负面副作用的智能给药系统。迄今为止,还缺乏对 BBR 和脂质体的研究,因此无法对未来用于人体的此类制剂进行合理化和基于分子的设计。在这项工作中,为了克服目前的局限性,我们提出了将 BBR 包封到脂质体中的方法,通过实验和计算测定相结合,合理确定脂质体的膜组成,从而最大限度地包封 BBR。首先,测量了几种膜成分的包封效率,结果表明胆固醇半琥珀酸酯能提高包封效率,胆固醇的作用较小。分子动力学模拟阐明了 BBR 包封效率和渗透性的物理基础:利用脂质成分,可以调节膜吸引分子(即吸附分子)到其表面的能力。总之,这些发现提出了一种合理的策略,即通过使用带负电荷的脂质来最大限度地提高脂质体的包封效率,从而为设计 BBR 输送系统奠定了基础,该系统可用于治疗抗生素耐药性等疾病。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Membrane Composition Allows the Optimization of Berberine Encapsulation in Liposomes.

Berberine (BBR) is a natural molecule with noteworthy pharmacological properties, including the prevention of antibiotic resistance in Gram-negative bacteria. However, its oral bioavailability is poor, thus resulting in an impaired absorption and efficacy in humans. In combination with other drugs, liposomes have been shown to enhance the availability of the drug, representing a smart delivery system to target tissues and reduce negative side effects. To date, there is a lack of studies on BBR and liposomes that enable the rationalization and molecular-based design of such formulations for future use in humans. In this work, the encapsulation of BBR into liposomes is proposed to overcome current limitations using a combination of experimental and computational assays to rationalize the membrane composition of liposomes that maximizes BBR encapsulation. First, the encapsulation efficiency was measured for several membrane compositions, revealing that it is enhanced by cholesteryl hemisuccinate and, to a lesser extent, by cholesterol. The physical basis of the BBR encapsulation efficiency and permeability was clarified using molecular dynamics simulation: using the lipid composition, one can tune the capability of membranes to attract, i.e., to adsorb, the molecules onto their surface. Overall, these findings suggest a rational strategy to maximize the encapsulation efficiency of liposomes by using negatively charged lipids, thus representing the basis for designing delivery systems for BBR, useful to treat, e.g., antibiotic resistance.

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来源期刊
Molecular Pharmaceutics
Molecular Pharmaceutics 医学-药学
CiteScore
8.00
自引率
6.10%
发文量
391
审稿时长
2 months
期刊介绍: Molecular Pharmaceutics publishes the results of original research that contributes significantly to the molecular mechanistic understanding of drug delivery and drug delivery systems. The journal encourages contributions describing research at the interface of drug discovery and drug development. Scientific areas within the scope of the journal include physical and pharmaceutical chemistry, biochemistry and biophysics, molecular and cellular biology, and polymer and materials science as they relate to drug and drug delivery system efficacy. Mechanistic Drug Delivery and Drug Targeting research on modulating activity and efficacy of a drug or drug product is within the scope of Molecular Pharmaceutics. Theoretical and experimental peer-reviewed research articles, communications, reviews, and perspectives are welcomed.
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