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Polyethylene glycol (PEG) as a key component of long-circulating delivery systems for therapy and imaging.

机译:聚乙二醇(PEG)作为用于治疗和成像的长循环输送系统的关键组件。

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摘要

The undesired side-effects of many therapies and diagnostics result from their accumulation in the non-target tissues. There is a clear need to design pharmaceutical delivery systems capable of delivering drugs, DNA and diagnostics to the target tissue with minimal accumulation in the non-target tissues. Targeted delivery of pharmaceuticals will help in reducing accumulation and undesired side-effects in the non-target organs, and increase the amount of drug delivered and drug bioavailability at intended target organs. Targeting can be achieved passively by long circulation time of the pharmaceuticals in the blood, actively by using target-specific ligands or by combination of both. The major long term goal of this project is to develop optimal delivery systems capable of delivering drugs, DNA or imaging agents to the intended target site using polymeric carriers like dextran, or nanoparticulate carriers like liposomes and micelles.;In this study, polyethylene glycol (PEG), a biocompatible hydrophilic polymer was used as the key component of various delivery systems to make them long-circulating for passive targeting and/or actively targeted via the attachment of various ligands onto their surfaces. PEG conjugates have been used to modify existing delivery platforms like dextran, to increase its circulation time in blood. PEG-phosphatidylethanolamine (PEG-PE) conjugates spontaneously form micelles with a hydrophobic lipid core to entrap super-paramagnetic iron oxide nanoparticles (SPION) and form stable nano-sized suspensions of SPION-micelles. There was a significant improvement in MRI signal from the SPION-micelles compared to "plain" SPION. To prepare targeted contrast agents, para -nitrophenyl PEG-PE (pNP-PEG-PE) conjugates were used to surfacemodify SPION-micelles with the anti-cancer nucleosome-specific monoclonal antibody 2C5 (mAb2C5). mAb2C5-SPION-micelles demonstrated increased association with cancer cells and were able to bring more MRI contrast signal to cancer cells in vitro. Moreover, physical targeting of SPION-micelles into subcutaneous tumor models in mice in vivo was also possible by using an external magnet.;Stimuli (pH)-sensitive PEG-PE conjugates [with a pH-cleavable hydrazone bond between PEG and PE (PEG-Hz-PE) making PEG detachable from the conjugate at lowered pH] can be used to prepare multifunctional nanocarriers with "hidden" functions that will be developed only upon external stimuli (lowered-pH values in tumor interstitium). Cell-penetrating peptides (CPPs) have been shown to effectively deliver the cargoes into the cell. Using pH-sensitive PEG-Hz-PE, we have constructed multifunctional nanocarriers which, in addition to prolonged circulation (via the attached PEG) and target recognition (via the attached antibody), carry the temporarily hidden CPP function. The CPPs attached to the nanocarriers are "shielded" with PEG chains under normal pH values (as in blood), however upon the incubation at low-pH values, hydrazone bond hydrolyzes, PEG detaches, and the CPPs become exposed and help internalize the nanocarriers into the cells. This is a significant step on the way toward "smart" multifunctional pharmaceutical nanocarriers capable of both target accumulation and intracellular penetration in a controlled fashion.
机译:许多疗法和诊断方法的不良副作用是由于它们在非目标组织中的积累。显然需要设计一种能够将药物,DNA和诊断剂输送到目标组织,并且在非目标组织中积累最少的药物输送系统。药物的靶向递送将有助于减少非靶器官中的蓄积和不良副作用,并增加预期靶器官的药物递送量和药物生物利用度。通过药物在血液中的长循环时间,使用靶标特异性配体或通过两者的结合,可以被动地实现靶向。该项目的主要长期目标是开发最佳的输送系统,该系统能够使用聚合物载体(如右旋糖酐)或纳米颗粒载体(如脂质体和胶束)将药物,DNA或显像剂输送至目标靶位。 PEG)(一种生物相容性亲水聚合物)被用作各种递送系统的关键成分,以使其长时间循环以用于被动靶向和/或通过各种配体附着在其表面上而主动靶向。 PEG结合物已被用于修饰现有的递送平台,如右旋糖酐,以增加其在血液中的循环时间。 PEG-磷脂酰乙醇胺(PEG-PE)共轭物自发形成具有疏水脂质核心的胶束,以包裹超顺磁性氧化铁纳米颗粒(SPION),并形成SPION-胶束的纳米级稳定悬浮液。与“普通” SPION相比,来自SPION胶束的MRI信号有了显着改善。为了制备靶向的造影剂,使用对硝基苯基PEG-PE(pNP-PEG-PE)偶联物通过抗癌核小体特异性单克隆抗体2C5(mAb2C5)对SPION-胶束进行表面修饰。 mAb2C5-SPION-胶束显示出与癌细胞的关联增加,并且能够在体外为癌细胞带来更多的MRI对比信号。此外,还可以通过使用外部磁体在体内将SPION胶束物理靶向到小鼠的皮下肿瘤模型中。刺激(pH)敏感的PEG-PE共轭物[在PEG和PE之间具有pH可裂解的bond键(PEG使在较低的pH下可从缀合物上分离的PEG的-Hz-PE)可用于制备具有“隐藏”功能的多功能纳米载体,该载体仅在外部刺激下才能产生(肿瘤间质pH值降低)。细胞穿透肽(CPP)已被证明可以有效地将货物运送到细胞中。使用pH敏感的PEG-Hz-PE,我们构建了多功能纳米载体,除了延长的循环(通过连接的PEG)和靶标识别(通过连接的抗体)外,还具有暂时隐藏的CPP功能。附着在纳米载体上的CPP在正常pH值下(如在血液中)被PEG链“屏蔽”,但是在低pH值下孵育时,键水解,PEG脱离,并且CPP暴露并帮助内化纳米载体进入细胞。这是朝着“智能”多功能药物纳米载体迈出的重要一步,该纳米载体能够以可控的方式靶向靶标积累和细胞内渗透。

著录项

  • 作者

    Sawant, Rishikesh Manohar.;

  • 作者单位

    Northeastern University.;

  • 授予单位 Northeastern University.;
  • 学科 Health Sciences Pharmacology.;Health Sciences Pharmacy.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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