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Engineered near-infrared nanomaterials for cancer theranostics: Integration of photophysical components.

机译:用于癌症治疗学的工程近红外纳米材料:光物理组件的集成。

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摘要

Engineered nanomaterials hold great promise for the development of next generation nanomedicine, such as image-guided-therapy, early-stage-detection and therapeutic monitoring of diseases. Current research efforts are focused on the development and application of these nanomaterials for cancer treatment. The ultimate goal in this research field is to develop multifunctional nanoparticles (MNPs) that can specifically locate and selectively destroy cancer cells. The focus of present studies was on the development of engineered MNPs to overcome the limitations associated with mono-functional imaging and therapeutic agents. The MNPs were strategically engineered by integrating photophysical components such as flurophores for optical imaging and photothermal materials for ablative therapy.;Molecular assembly of organic fluorophores was controlled inside an inorganic matrix to attain hybrid nanoparticles with enhanced optical properties. The high detection sensitivity of these near-infrared fluorescent (NIRF) nanoparticles (size 40nm) was demonstrated in vivo by fluorescence imaging at 10 time lower concentration than quantum dots. Surface modification strategies, involving functionalization of NPs (utilizing biotin-avidin chemistry) with small tumor targeting proteins, were employed to deliver these nanoparticles to uniquely identified sites in tumor environment with ∼10% efficiency.;Subsequently, these NIRF nanoparticles were modified to exhibit photothermal properties by integration of either photothermal materials within the NIRF particulate structure. Conventionally used plasmonic photothermal materials due to their size and shape restrictions could not be incorporated in the NIRF nanoparticles. A novel strategy based on interplasmon coupling between sub 4nm gold nanoparticles was developed to overcome this limitation. Surface of NIRF NPs was decorated either externally or internally with small gold nanoparticles in a controlled fashion (surface coverage 6-14%, size 0.7, 1.2, and 3.8nm). The gold speckled silica nanoparticles thus formed exhibited both optical luminescence and photothermal properties. Another strategy to incorporate photothemal properties in NIRF NPs was based on mixed micelles mediated synthesis of organic-inorganic hybrid structures. Molecular photothermal agents such as metal-naphthalocyanine dyes were incorporated inside the pores of NIRF NPs (photothermal: fluorescence dye 4:1). The high optical absorbance cross-section and optical imaging properties of MNPs were utilized for image guided photothermal ablation (tumor necrosis > 90%) of a human breast cancer tumor inside mice.
机译:工程纳米材料对下一代纳米医学的发展具有广阔的前景,例如图像引导疗法,疾病的早期检测和治疗监测。当前的研究工作集中于这些纳米材料在癌症治疗中的开发和应用。该研究领域的最终目标是开发可以特异性定位并选择性破坏癌细胞的多功能纳米颗粒(MNP)。目前的研究重点是开发工程化的MNP,以克服与单功能成像和治疗剂相关的局限性。通过整合光物理组件(例如用于光学成像的荧光团和用于消融治疗的光热材料)对MNP进行策略性工程设计;在无机基质内部控制有机荧光团的分子组装,以获得具有增强的光学性能的杂化纳米粒子。这些近红外荧光(NIRF)纳米粒子(尺寸为40nm)的高检测灵敏度通过荧光成像以比量子点低10倍的浓度在体内得到证实。表面修饰策略涉及将NPs(利用生物素-亲和素化学)与小的肿瘤靶向蛋白进行功能化,从而以约10%的效率将这些纳米颗粒递送至肿瘤环境中唯一鉴定的位点;随后,这些NIRF纳米颗粒被修饰以显示通过将任一光热材料整合到NIRF颗粒结构中来实现光热特性。由于其尺寸和形状限制,常规使用的等离激元光热材料不能结合到NIRF纳米粒子中。为了克服该局限性,开发了一种基于等离子在亚4nm金纳米粒子之间的偶合子耦合的新策略。 NIRF NPs的表面以可控的方式在外部或内部装饰有小金纳米颗粒(表面覆盖率为6-14%,尺寸为0.7、1.2和3.8nm)。如此形成的金斑点的二氧化硅纳米粒子表现出光学发光和光热性质。在NIRF NP中引入光热特性的另一种策略是基于混合胶束介导的有机-无机杂化结构的合成。分子光热剂(例如金属萘菁染料)掺入了NIRF NP的孔中(光热:荧光染料4:1)。 MNP的高光吸收截面和光学成像特性被用于小鼠体内人类乳腺癌肿瘤的图像引导光热消融(肿瘤坏死> 90%)。

著录项

  • 作者

    Singh, Amit Kumar.;

  • 作者单位

    University of Florida.;

  • 授予单位 University of Florida.;
  • 学科 Nanoscience.;Engineering Materials Science.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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