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药物/夹层界面影响吸入式抗结核治疗用双载脂质体的内部结构:深入的小角中子散射研究。

Drugs/lamellae interface influences the inner structure of double-loaded liposomes for inhaled anti-TB therapy: An in-depth small-angle neutron scattering investigation.

机构信息

Dipartimento di Scienze della Vita, Università degli Studi di Modena e Reggio Emilia, via Campi 103, 41121 Modena, Italy.

Dipartimento di Scienze Farmaceutiche, Università degli Studi di Milano, Via L. Mangiagalli 25, 20133 Milano, Italy.

出版信息

J Colloid Interface Sci. 2019 Apr 1;541:399-406. doi: 10.1016/j.jcis.2019.01.094. Epub 2019 Jan 23.

DOI:10.1016/j.jcis.2019.01.094
PMID:30710822
Abstract

With the aim of developing new drug carriers for inhalation therapy, we report here an in depth investigation of the structure of multilamellar liposomes loaded with two well-established anti-tubercular (anti-TB) drugs, isoniazid (INH) and rifampicin (RIF), by means of small-angle neutron-scattering (SANS) analysis. Unloaded, single drug-loaded and co-loaded liposomes were prepared using different amounts of drugs and characterized regarding size, encapsulation efficiency and drug release. Detailed information on relevant properties of the investigated host-guest structures, namely the steric bilayer thickness, particle dispersion, number of lamellae and drug localization was studied by SANS. Results showed that RIF-liposomes were less ordered than unloaded liposomes. INH induced a change in the inter-bilayer periodical spacing, while RIF-INH co-loading stabilized the multilamellar liposome architecture, as confirmed by the increment of the drug loading capacity. These findings could be useful for the understanding of in vitro and in vivo behavior of these systems and for the design of new drug carriers, intended for inhaled therapy.

摘要

为了开发新的吸入治疗药物载体,我们通过小角中子散射(SANS)分析深入研究了负载两种成熟的抗结核(anti-TB)药物异烟肼(INH)和利福平(RIF)的多层脂质体的结构。使用不同量的药物制备了未负载、单药负载和共负载的脂质体,并对其大小、包封效率和药物释放进行了表征。SANS 研究了有关研究主体-客体结构的相关性质的详细信息,即位阻双层厚度、颗粒分散度、层片数和药物定位。结果表明,RIF 脂质体的有序性低于未负载的脂质体。与未负载的脂质体相比,INH 引起了层间周期性间隔的变化,而 RIF-INH 共负载稳定了多层脂质体结构,这可以通过增加药物载药量来证实。这些发现有助于理解这些系统的体外和体内行为,并有助于设计用于吸入治疗的新药物载体。

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