脂质亚砜聚合物是具有不同白蛋白结合亲和力的潜在吸入式给药平台

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Gayathri R. Ediriweera, Neville J. Butcher, Ashok Kothapalli, Jiacheng Zhao, Joanne T. Blanchfield, Christopher N. Subasic, James L. Grace, Changkui Fu, Xiao Tan, John F. Quinn, David B. Ascher, Michael R. Whittaker, Andrew K. Whittaker and Lisa M. Kaminskas
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引用次数: 0

摘要

为优化呼吸系统疾病的药物治疗,可吸入纳米药物的开发日益增多。虽然大型脂质纳米系统处于可吸入纳米药物开发的最前沿,但它也有许多局限性。因此,本研究的目的是研究基于聚(2-(甲基亚磺酰基)丙烯酸乙酯)的新型小型脂质氧化亚砜聚合物作为可吸入给药平台的实用性,该平台可通过不同的白蛋白结合动力学调整膜渗透性。线性 PMSEA(5 kDa)被用作亲水性聚合物骨架,与聚(乙二醇)相比,具有优异的防污和隐身性能。末端脂质包括单链(1C2、1C12)或双链(2C12)二甘油酯,可提供对白蛋白的不同亲和力,进而提供白蛋白在肺部的运输途径。体外研究了白蛋白结合动力学、细胞毒性、肺粘液穿透性、细胞摄取以及通过肺部关键细胞屏障的渗透性。在高达 1 毫克/毫升的浓度下,聚合物在 24 小时内显示出良好的粘液渗透性和无细胞毒性。1C2- 与白蛋白没有相互作用,而 1C12-PMSEA 和 2C12-PMSEA 与白蛋白结合的 KD 值分别约为 76 uM 和 10 uM。尽管与白蛋白结合,但与较小的聚合物相比,2C12-PMSEA 显示出较低的细胞摄取率和膜渗透性,而白蛋白的存在对细胞摄取率和膜渗透性几乎没有影响。虽然 PMSEA 能使这些脂质不受白蛋白的影响,但这些数据表明,还可以调整这些系统中的脂质成分,以控制肺部的膜渗透性和细胞相互作用,从而调整药物在肺部的分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Lipid sulfoxide polymers as potential inhalable drug delivery platforms with differential albumin binding affinity†

Lipid sulfoxide polymers as potential inhalable drug delivery platforms with differential albumin binding affinity†

Inhalable nanomedicines are increasingly being developed to optimise the pharmaceutical treatment of respiratory diseases. Large lipid-based nanosystems at the forefront of the inhalable nanomedicines development pipeline, though, have a number of limitations. The objective of this study was, therefore, to investigate the utility of novel small lipidated sulfoxide polymers based on poly(2-(methylsulfinyl)ethyl acrylate) (PMSEA) as inhalable drug delivery platforms with tuneable membrane permeability imparted by differential albumin binding kinetics. Linear PMSEA (5 kDa) was used as a hydrophilic polymer backbone with excellent anti-fouling and stealth properties compared to poly(ethylene glycol). Terminal lipids comprising single (1C2, 1C12) or double (2C12) chain diglycerides were installed to provide differing affinities for albumin and, by extension, albumin trafficking pathways in the lungs. Albumin binding kinetics, cytotoxicity, lung mucus penetration and cellular uptake and permeability through key cellular barriers in the lungs were examined in vitro. The polymers showed good mucus penetration and no cytotoxicity over 24 h at up to 1 mg ml−1. While 1C2-showed no interaction with albumin, 1C12-PMSEA and 2C12-PMSEA bound albumin with KD values of approximately 76 and 10 μM, respectively. Despite binding to albumin, 2C12-PMSEA showed reduced cell uptake and membrane permeability compared to the smaller polymers and the presence of albumin had little effect on cell uptake and membrane permeability. While PMSEA strongly shielded these lipids from albumin, the data suggest that there is scope to tune the lipid component of these systems to control membrane permeability and cellular interactions in the lungs to tailor drug disposition in the lungs.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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