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将两亲分子封装到尺寸分布窄的聚苯乙烯微球中。

The encapsulation of an amphiphile into polystyrene microspheres of narrow size distribution.

作者信息

Pellach Michal, Margel Shlomo

机构信息

Department of Chemistry, Bar-Ilan University, Ramat Gan 52900, Israel.

出版信息

Chem Cent J. 2011 Dec 6;5(1):78. doi: 10.1186/1752-153X-5-78.

Abstract

Encapsulation of compounds into nano- or microsized organic particles of narrow size distribution is of increasing importance in fields of advanced imaging and diagnostic techniques and drug delivery systems. The main technology currently used for encapsulation of molecules within uniform template particles while retaining their size distribution is based on particle swelling methodology, involving penetration of emulsion droplets into the particles. The swelling method, however, is efficient for encapsulation only of hydrophobic compounds within hydrophobic template particles. In order to be encapsulated, the molecules must favor the hydrophobic phase of an organic/aqueous biphasic system, which is not easily achieved for molecules of amphiphilic character.The following work overcomes this difficulty by presenting a new method for encapsulation of amphiphilic molecules within uniform hydrophobic particles. We use hydrogen bonding of acid and base, combined with a pseudo salting out effect, for the entrapment of the amphiphile in the organic phase of a biphasic system. Following the entrapment in the organic phase, we demonstrated, using fluorescein and (antibiotic) tetracycline as model molecules, that the swelling method usually used only for hydrophobes can be expanded and applied to amphiphilic molecules.

摘要

将化合物封装到尺寸分布窄的纳米或微米级有机颗粒中,在先进成像和诊断技术以及药物递送系统领域变得越来越重要。目前用于在保持分子尺寸分布的同时将其封装在均匀模板颗粒内的主要技术基于颗粒溶胀方法,包括乳液滴渗透到颗粒中。然而,溶胀法仅对将疏水性化合物封装在疏水性模板颗粒中有效。为了被封装,分子必须有利于有机/水双相系统的疏水相,而对于具有两亲性的分子来说这并不容易实现。以下工作通过提出一种将两亲性分子封装在均匀疏水颗粒内的新方法克服了这一困难。我们利用酸和碱的氢键作用,结合假盐析效应,将两亲物截留在双相系统的有机相中。在截留在有机相之后,我们以荧光素和(抗生素)四环素作为模型分子证明,通常仅用于疏水性物质的溶胀法可以扩展并应用于两亲性分子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac15/3285059/506ad5004e7e/1752-153X-5-78-1.jpg

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