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Development of nanoparticle based tools for reactive oxygen species and related biomedical applications.

机译:用于活性氧和相关生物医学应用的基于纳米颗粒的工具的开发。

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摘要

Reactive oxygen species (ROS) are various oxygen derived intermediates produced from the reduction of molecular oxygen and highly reactive/cytotoxic byproducts of aerobic metabolisms in biology. ROS includes hydroxyl radicals, superoxide anion radical, hydrogen peroxide, and energetically excited oxygen. ROS are capable of oxidizing various biomolecules, interrupting their cellular functions and inducing cell death. However, our understandings about ROS still largely remain in qualitative stages because their exceptionally unstable nature makes the investigations of ROS highly challenging.;This work demonstrates how to utilize nanoparticle-encapsulation to ROS related research and applications with improved properties. Three independent nanoparticle based tools have been developed using PEBBLE (Photonic Explorer for Biomedical use with Biologically Localized Embedding) technology with organically modified silicate (Ormosil) matrix. First, singlet oxygen sensitive nanoparticle probes were synthesized by encapsulating a singlet oxygen molecular probe, 1,3-diphenylisobenzofuran (DPIBF), which is the most sensitive but not appropriate for biological uses, into protective Ormosil matrix. They exhibited improved singlet oxygen sensitivity over conventional molecular probes. Based on this established sensitivity, the direct quantity of singlet oxygen generated from an in vitro photodynamic therapy (PDT) for cancer was able to be determined. Second, hydrogen peroxide detecting nanoparticle probes were also developed. The non-specific ROS detecting molecular probe, 2',7'-dichlorofluorescin diaceate (DCFDA) was embedded into Ormosil nanoparticle by post-loading technique. The DCFDA nanoprobes showed enhanced selectivity towards H2O2 by excluding the interferences from other ROS by screening effect of nanoparticle matrix based on the combination of size exclusion, lifetime exclusion, and hydrophobicity. An in vitro H2O2 production from stimulated macrophages could be quantitatively monitored by the DCFDA PEBBLE nanoprobes with low nM of resolution. Third, dual-functional nanoparticles containing near-infrared absorbing indocyanine green dye (ICG) were developed for photoacoustic imaging/diagnosis and photodynamic therapy for cancer. The ICG nanoparticles showed capability of generating singlet oxygen for PDT. Tissue mimicking phantoms containing these nanoparticles were built with diffusive agarose gels and they were successfully imaged by 2-D and 3-D photoacoustic imaging systems. ICG nanoparticles were targeted to cancer by incorporating with an antibody and displayed sufficient photoacoustic contrast effect in a prostate cancer model in vitro.
机译:活性氧(ROS)是生物中需氧代谢中分子氧的减少和高反应性/细胞毒性副产物的还原而产生的各种氧衍生中间体。 ROS包括羟基自由基,超氧阴离子自由基,过氧化氢和能量激发的氧。 ROS能够氧化多种生物分子,中断其细胞功能并诱导细胞死亡。然而,我们对ROS的理解仍处于定性阶段,因为它们的异常不稳定性质使对ROS的研究极具挑战性。已使用PEBBLE(具有生物定位嵌入技术的生物医学用光子探测器)技术和有机改性的硅酸盐(Ormosil)基质开发了三种基于纳米粒子的独立工具。首先,通过将最敏感但不适用于生物学用途的单线态氧分子探针1,3-二苯基异苯并呋喃(DPIBF)封装到保护性Ormosil基质中,从而合成了单线态氧敏感性纳米粒子探针。与常规分子探针相比,它们表现出更高的单线态氧敏感性。基于这种确定的敏感性,可以确定从体外光动力疗法(PDT)产生的癌症单线态氧的直接量。其次,还开发了过氧化氢检测纳米颗粒探针。通过后加载技术将非特异性ROS检测分子探针2',7'-二氯荧光素二乙酰(DCFDA)嵌入Ormosil纳米粒子中。通过基于尺寸排阻,寿命排阻和疏水性的组合,通过筛选纳米颗粒基质的效果排除了其他ROS的干扰,DCFDA纳米探针对H2O2的选择性增强。刺激的巨噬细胞在体外产生的H2O2可以通过nFDA低nM分辨率的DCFDA PEBBLE纳米探针进行定量监测。第三,开发了包含近红外吸收吲哚菁绿色染料(ICG)的双功能纳米粒子,用于癌症的光声成像/诊断和光动力疗法。 ICG纳米颗粒显示出产生PDT单线态氧的能力。用弥漫性琼脂糖凝胶构建包含这些纳米颗粒的模仿人体模型的组织,并成功地通过2-D和3-D光声成像系统对它们进行成像。 ICG纳米粒子通过掺入抗体靶向癌症,并在体外前列腺癌模型中显示出足够的光声对比效果。

著录项

  • 作者

    Kim, Gwangseong.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Chemistry Analytical.;Engineering Biomedical.;Chemistry Pharmaceutical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 149 p.
  • 总页数 149
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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