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基于纳米凝胶自下而上方法的双交联水凝胶纳米粒子用于缓释递送。

Dual crosslinked hydrogel nanoparticles by nanogel bottom-up method for sustained-release delivery.

机构信息

Institute of Biomaterials and Bioengineering, Tokyo Medical and Dental University, 2-3-10 Kanda-Surugadai, Tokyo 101-0062, Japan.

出版信息

Colloids Surf B Biointerfaces. 2012 Nov 1;99:38-44. doi: 10.1016/j.colsurfb.2011.09.025. Epub 2011 Sep 19.

DOI:10.1016/j.colsurfb.2011.09.025
PMID:21996463
Abstract

Polysaccharide-PEG hybrid nanogels (CHPOA-PEGSH) crosslinked by both covalent ester bonds and physical interactions were prepared by the reaction of a thiol-modified poly(ethylene glycol) (PEGSH) with acryloyl-modified cholesterol-bearing pullulan (CHPOA). Experimental parameters, including CHPOA concentration, the degree of acryloyl substitution of CHPOA, and the initial amounts of CHPOA and PEGSH, were modified in order to assess their effect on the size of the nanogels (50-150 nm) and on their degradation kinetics, monitored by dynamic light scattering (DLS) and asymmetrical flow field-flow fractionation (AF4) chromatography. Rhodamine-labeled nanogels were injected intravenously into mice and their concentration in blood was determined by a fluorescence assay as a function of post-injection time. The elimination half-life (t(1/2)) of CHPOA-PEGSH nanoparticles was about 15-fold longer (18 h) than that of CHP nanogels (1.2 h). The half-life enhancement of CHPOA-PEGSH was attributed to the presence of the crosslinker PEG chains, which prevent non-specific protein adsorption, and to the slow hydrolysis kinetics of the crosslinking esters in the biological milieu. The hybrid CHPOA-PEGSH nanogels are expected to be useful as injectable nanocarriers for drugs and proteins, in view of their low surface fouling and slow hydrolysis rate.

摘要

通过巯基修饰的聚乙二醇(PEGSH)与丙烯酰基修饰的载胆固醇麦芽七糖(CHPOA)的反应,制备了通过共价酯键和物理相互作用交联的多糖-PEG 杂化纳米凝胶(CHPOA-PEGSH)。实验参数,包括 CHPOA 浓度、CHPOA 的丙烯酰基取代度以及 CHPOA 和 PEGSH 的初始量,进行了修饰,以评估它们对纳米凝胶(50-150nm)的大小及其降解动力学的影响,通过动态光散射(DLS)和不对称流场流分离(AF4)色谱监测。将罗丹明标记的纳米凝胶静脉注射到小鼠体内,并通过荧光测定法测定其在血液中的浓度作为注射后时间的函数。CHPOA-PEGSH 纳米颗粒的消除半衰期(t(1/2))比 CHP 纳米凝胶(1.2h)长约 15 倍(18h)。CHPOA-PEGSH 的半衰期延长归因于交联剂 PEG 链的存在,其防止非特异性蛋白质吸附,以及在生物环境中交联酯的缓慢水解动力学。鉴于其低表面污染和缓慢的水解速率,杂化 CHPOA-PEGSH 纳米凝胶有望用作药物和蛋白质的可注射纳米载体。

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