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一种新型方法,用于制备含有亲水性低分子量药物的聚合物纳米载体:一种绿色策略,可提供非常高的药物负载量。

A New Methodology to Create Polymeric Nanocarriers Containing Hydrophilic Low Molecular-Weight Drugs: A Green Strategy Providing a Very High Drug Loading.

机构信息

Department of Sciences and Pharmaceutical Technology , University of Chile , Santiago de Chile 8380494 , Chile.

Instituto de Ciencias Químicas, Facultad de Ciencias , Universidad Austral de Chile , Casilla 567 , Valdivia 5110033 , Chile.

出版信息

Mol Pharm. 2019 Jul 1;16(7):2892-2901. doi: 10.1021/acs.molpharmaceut.9b00097. Epub 2019 Jun 3.

Abstract

To date, a large number of active molecules are hydrophilic and aromatic low molecular-weight drugs (HALMD). Unfortunately, the low capacity of these molecules to interact with excipients and the fast release when a formulation containing them is exposed to biological media jeopardize the elaboration of drug delivery systems by using noncovalent interactions. In this work, a new, green, and highly efficient methodology to noncovalently attach HALMD to hydrophilic aromatic polymers to create nanocarriers is presented. The proposed method is simple and consists in mixing an aqueous solution containing HALMD (model drugs: imipramine, amitriptyline, or cyclobenzaprine) with another aqueous solution containing the aromatic polymer [model polymer: poly(sodium 4-styrenesulfonate) (PSS)]. NMR experiments demonstrate strong chemical shifting of HALMD aromatic rings when interacting with PSS, evidencing aromatic-aromatic interactions. Ion pair formation and aggregation produce the collapse of the system in the form of nanoparticles. The obtained nanocarriers are spheroidal, their size ranging between 120 and 170 nm, and possess low polydispersity (≤0.2) and negative zeta potential (from -60 to -80 mV); conversely, the absence of the aromatic group in the polymer does not allow the formation of nanostructures. Importantly, in addition to high drug association efficiencies (≥90%), the formed nanocarriers show drug loading values never evidenced for other systems comprising HALMD, reaching ≈50%. Diafiltration and stopped flow experiments evidenced kinetic drug entrapment governed by molecular rearrangements. Importantly, the nanocarriers are stable in suspension for at least 18 days and are also stable when exposed to different high ionic strength, pH, and temperature values. Finally, they are transformable to a reconstitutable dry powder without losing their original characteristics. Considering the large quantity of HALMD with importance in therapeutics and the simplicity of the presented strategy, we envisage these results as the basis to elaborate a number of drug delivery systems with applications in different pathologies.

摘要

迄今为止,大量的活性分子是亲水性和芳香性的低分子量药物(HALMD)。不幸的是,这些分子与赋形剂相互作用的能力低,以及当含有它们的制剂暴露于生物介质时快速释放,这使得使用非共价相互作用来精心设计药物传递系统变得具有挑战性。在这项工作中,提出了一种新的、绿色的、高效的非共价方法将 HALMD 附着到亲水性芳香族聚合物上以创建纳米载体。所提出的方法简单,包括将含有 HALMD(模型药物:丙咪嗪、阿米替林或环苯扎林)的水溶液与含有芳香族聚合物[模型聚合物:聚(4-苯乙烯磺酸钠)(PSS)]的另一种水溶液混合。NMR 实验证明,当与 PSS 相互作用时,HALMD 芳环发生强烈的化学位移,表明芳环-芳环相互作用。离子对的形成和聚集导致系统以纳米颗粒的形式崩溃。所得到的纳米载体呈球形,其尺寸在 120 至 170nm 之间,具有低多分散性(≤0.2)和负的 zeta 电位(-60 至-80mV);相反,聚合物中不存在芳环基团不允许形成纳米结构。重要的是,除了高药物结合效率(≥90%)外,形成的纳米载体显示出从未在包含 HALMD 的其他系统中证明过的药物负载值,达到≈50%。透析和停流实验证明了动力学药物包封受分子重排的控制。重要的是,纳米载体在悬浮液中至少稳定 18 天,并且在暴露于不同的高离子强度、pH 值和温度值时也稳定。最后,它们可以转化为可再分散的干粉而不会失去其原始特性。考虑到在治疗学中具有重要意义的大量 HALMD 和所提出策略的简单性,我们预计这些结果将为精心设计具有不同病理学应用的许多药物传递系统奠定基础。

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