首页> 外文期刊>International Journal of Pharmaceutics >S-propranolol imprinted polymer nanoparticle-on-microsphere composite porous cellulose membrane for the enantioselectively controlled delivery of racemic propranolol.
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S-propranolol imprinted polymer nanoparticle-on-microsphere composite porous cellulose membrane for the enantioselectively controlled delivery of racemic propranolol.

机译:S-心得安印迹微球上的聚合物纳米颗粒复合多孔纤维素膜,用于外消旋心得安的对映选择性控制传递。

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摘要

Molecularly imprinted polymer (MIP) nanoparticle-on-microspheres (NOM) selective for S-propranolol were successfully prepared using suspension polymerization involving agitation of the reaction mixture at high speed. The integration of the MIP-NOM into a self-assembled porous cellulose membrane allowed a controlled distribution and availability of the molecule recognition sites within a porous structure. The nature of the membrane-included microparticles determined the degree of porosity whilst the adherent nanoparticles provided an increased surface area enabling the composite membrane to be employed efficiently for the trans-membrane transport of the imprinted molecule. The MIP-NOM within the membrane were easily accessible for binding of the imprinted molecule and appeared to maintain high selectivity, indicating that the composite membranes may potentially provide valuable affinity matrices. In this study, the application for MIP-NOM composite cellulose membranes were investigated for their potential to act as transdermal drug delivery systems for the S-enantiomers from racemic propranolol, its ester prodrugs (cyclopropanoyl- and valeryl-propranolol) or other beta-blockers (pindolol and oxprenolol). The enantioselective release of the fluorescently active 1-pyrene-butyryl ester prodrug of S-propranolol from MIP-NOM composite membranes and its diffusion and transit across excised rat skin was monitored by confocal laser scanning microscopy. The mechanism underlying the release of S-propranolol from the MIP-NOM composite membrane was found to involve specific adsorption and mobility of this enantiomer at the binding site in the MIP-NOM as the latter undergo a transition from the dry to wet state. The proposed MIP-NOM composite membrane controlled release system may be applicable for fabrication of novel membranes with self-controllable permeability responding to the presence of target solutes.
机译:使用悬浮聚合反应(包括高速搅拌反应混合物)成功制备了对S-普萘洛尔具有选择性的分子印迹聚合物(MIP)纳米微粒对微球(NOM)。将MIP-NOM整合到自组装的多孔纤维素膜中,可以在多孔结构内控制分子识别位点的分布和可用性。包含膜的微粒的性质决定了孔隙度,而附着的纳米颗粒提供了增加的表面积,使得复合膜可以有效地用于印迹分子的跨膜运输。膜内的MIP-NOM易于与印迹分子结合,并显示出高选择性,表明复合膜可能潜在提供有价值的亲和基质。在这项研究中,研究了MIP-NOM复合纤维素膜作为外消旋普萘洛尔,其酯类前药(环丙酰基和戊酰基-普萘洛尔)或其他β-受体阻滞剂S-对映体的透皮给药系统的潜力。 (潘多洛尔和奥曲洛尔)。通过共聚焦激光扫描显微镜监测MIP-NOM复合膜中S-心得安的荧光活性1-py-丁酸酯衍生物的对映选择性释放及其在被切除大鼠皮肤中的扩散和迁移。发现从MIP-NOM复合膜释放S-普萘洛尔的机理涉及该对映异构体在MIP-NOM结合位点的特异性吸附和迁移,因为后者经历了从干态到湿态的转变。拟议的MIP-NOM复合膜控释系统可适用于新型膜的制造,该膜可响应目标溶质的存在而具有可自我控制的渗透性。

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