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Gold and iron loaded micelles: A multifunctional approach for combined imaging and therapy, with improved pharmacokinetics.

机译:载有金和铁的胶束:结合成像和治疗的多功能方法,并改善了药代动力学。

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摘要

Radiation therapy is an important component in the treatment and management of cancer patients. Despite current advances in imaging technologies and treatment planning strategies, a major limitation persists in accurately delineating tumor from normal tissue resulting in radiation-induced damage to healthy structures. Therefore, the frequency and dose of radiation exposure is limited by the generated toxicity in healthy tissues. The use of nanoparticles for contrast-enhanced imaging could improve the accuracy of therapeutic delivery and guide radiation treatments to maximize delivery to disease target tissues while sparing adjacent normal structures. Further, advancements in radiation therapy focus on the use of radiosensitizers that are intended to enhance tumor cell killing while minimizing effects on normal tissue. We have developed multifunctional nanoplatforms, containing sub-nanometer gold and iron nanoparticles that can provide contrast enhancement using computed tomography and magnetic resonance imaging, while also serving as radiosensitizers for X-ray therapy. The effectiveness of these nanoparticles was evaluated in vivo demonstrating an improvement in both tumor margin visualization for image-guided radiation therapy and overall survival in tumor bearing mice. Importantly, we found that measurements of contrast enhancement in imaging correlated strongly with tumor response after radiation therapy. Furthermore, we have found that by encapsulating sub-nanometer gold particles within micelles we are able achieve improved excretion profiles compared to larger gold particles, with gold detected in both urine and feces suggesting that particles within this size range are more efficiently removed by the kidneys and liver. Finally, the use of an actively targeted nanoplatform can achieve higher tumor retention, facilitate nanoparticle internalization, and improve tumor specificity. To facilitate the introduction of targeting molecules onto micelle formulations, a naturally occurring surfactant protein oleosin was used to stabilize superparamagnetic iron oxide clusters. Functionalization with targeting ligands (e.g. Her2/neu affibody) was achieved by fusing the biologically relevant motifs to oleosin using standard cloning techniques, and cell specific targeting was confirmed using magnetic relaxation techniques. In the future, we envision that strategies like this will minimize the off-target effects of radiation, reduce tumor burden, provide information on the likelihood of tumor regression in response to therapy and reduce long-term nanoparticle retention.
机译:放射疗法是癌症患者治疗和管理中的重要组成部分。尽管目前在成像技术和治疗计划策略方面取得了进步,但主要的局限性仍然在于准确地将肿瘤与正常组织区分开来,从而导致放射线对健康结构的损害。因此,辐射的频率和剂量受到健康组织中产生的毒性的限制。使用纳米颗粒进行造影剂增强成像可以提高治疗传递的准确性,并指导放射治疗以最大限度地传递到疾病目标组织,同时保留相邻的正常结构。此外,放射疗法的进展集中于使用放射增敏剂,其旨在增强肿瘤细胞杀伤力,同时使对正常组织的影响最小化。我们开发了多功能纳米平台,其中包含亚纳米级的金和铁纳米粒子,可以使用计算机断层扫描和磁共振成像来增强对比度,同时还可以用作X射线疗法的放射增敏剂。在体内评估了这些纳米粒子的有效性,证明了图像引导放射治疗的肿瘤边缘可视化和荷瘤小鼠的整体存活率均得到改善。重要的是,我们发现影像学中对比增强的测量与放射治疗后的肿瘤反应密切相关。此外,我们发现通过将亚纳米金颗粒包封在胶束中,与较大的金颗粒相比,我们能够获得改善的排泄特征,尿液和粪便中都检测到金,这表明肾脏可以更有效地清除此尺寸范围内的颗粒。和肝脏。最后,使用主动靶向的纳米平台可以实现更高的肿瘤保留率,促进纳米颗粒的内在化并提高肿瘤特异性。为了促进将靶向分子引入胶束制剂,天然存在的表面活性剂蛋白油质蛋白被用于稳定超顺磁性氧化铁簇。通过使用标准克隆技术将生物学相关的基序融合到油质蛋白上,可以实现靶向配体(例如Her2 / neu亲和体)的功能化,并使用磁弛豫技术确认了细胞特异性靶向。在未来,我们设想这样的策略将使放射线的脱靶效应最小化,减少肿瘤负担,提供有关治疗后肿瘤消退的可能性的信息,并减少长期的纳米颗粒保留。

著录项

  • 作者

    Al Zaki, Ajlan.;

  • 作者单位

    University of Pennsylvania.;

  • 授予单位 University of Pennsylvania.;
  • 学科 Geological engineering.;Oncology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 235 p.
  • 总页数 235
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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