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Nanotechnology and additive manufacturing platforms for clinical medicine: An investigation of 3D printing bioactive constructs and halloysite nanotubes for drug delivery and biomaterials.

机译:用于临床医学的纳米技术和增材制造平台:3D打印生物活性结构和埃洛石纳米管的研究,用于药物输送和生物材料。

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摘要

Personalized medicine requires the development of new technologies for controlled or targeted drug delivery. Three-dimensional (3D) printing and additive manufacturing techniques can be used to generate customized constructs for bioactive compound delivery. Nanotechnology in the form of nanoparticles, used as a stand-alone construct or for material enhancements, can significantly improve established biomaterials such as PMMA based bone cements or enable new technology to have enhanced capabilities. Combinations of the technologies can be used in such applications as infectious disease treatments, chemotherapeutic targeted drug delivery or targeted delivery of nearly any bioactive compound.;Chemotherapeutic or antibiotic enhanced 3D printing filaments were invented and designed to allow for the fabrication of antibiotic beads, drug eluting catheters, drains, stents, screws or any bioactive construct. Halloysite nanotubes (HNTs) were investigated as a modular platform and solely or in combinations were coated in metals including: iron for magnetic targeted delivery including hyperthermia, gold for laser targeted hyperthermia or barium as a contrast agent for visualization. The particles were test loaded with antibiotics or chemotherapeutics as well as coated in biocompatible coatings containing lipids or layered polyelectrolytes. Nanoparticles were added to 3D printing filaments or bone cements to test increases in strength, contrast or pore size.;3D print filaments and bioactive constructs that eluted gentamicin sulfate were tested using clinical microbiology lab standards and were shown to inhibit bacterial growth. 3D print filaments that eluted methotrexate were shown to inhibit proliferation of osteosarcoma cells and also provided a means for sustained drug release. Halloysite was successfully shown as a modular platform that could be highly customized for patient specific uses. Single coatings or combinations of magnetically susceptible iron coatings, gold coatings, drug loading of multiple bioactive compounds and biocompatible coatings were also developed. Bone cements with barium-coated particles were shown to have enhanced contrast.;The first ever ability to create and use bioactive 3D printing filaments on consumer printers was realized and HNTs were developed as proof of principle for multifunctional and real time customizable nanoparticle platforms. Nanoparticles as additives showed ways to modify established biomaterials or 3D printing filaments with enhanced features and properties.
机译:个性化药物需要开发新技术以控制或靶向给药。三维(3D)打印和增材制造技术可用于生成用于生物活性化合物输送的定制结构。纳米颗粒形式的纳米技术,可作为独立的结构或用于增强材料,可以显着改善已建立的生物材料,例如基于PMMA的骨水泥或使新技术具有增强的功能。这些技术的组合可用于诸如传染病治疗,化学靶向药物递送或几乎任何生物活性化合物的靶向递送等应用;发明了化学疗法或抗生素增强型3D打印丝,并设计用于制造抗生素珠,药物洗脱导管,引流管,支架,螺钉或任何具有生物活性的结构。研究了埃洛石纳米管(HNT)作为模块化平台,并且单独或组合使用了以下金属涂层:金属用于包括热疗在内的磁性靶向递送铁,用于激光靶向热疗的黄金或作为可视化造影剂的钡。对颗粒进行了抗生素或化学疗法的负载测试,并涂覆了含有脂质或层状聚电解质的生物相容性涂层。将纳米颗粒添加到3D打印长丝或骨水泥中以测试强度,对比度或孔径的增加。;使用临床微生物学实验室标准测试了洗脱硫酸庆大霉素的3D打印长丝和生物活性结构,并显示抑制细菌生长。洗脱甲氨蝶呤的3D打印长丝显示抑制骨肉瘤细胞的增殖,并且还提供了持续释放药物的方法。 Halloysite已成功展示为可以针对患者特定用途进行高度定制的模块化平台。还开发了单涂层或磁敏铁涂层,金涂层,多种生物活性化合物的药物负载量和生物相容性涂层的组合。已显示具有钡涂层颗粒的骨水泥具有增强的对比度。;实现了在消费打印机上创建和使用生物活性3D打印长丝的首创能力,并且开发了HNT作为多功能实时实时可定制纳米颗粒平台的原理证明。纳米粒子作为添加剂展示了改性已有的生物材料或具有增强的特征和特性的3D打印长丝的方法。

著录项

  • 作者

    Weisman, Jeffery A.;

  • 作者单位

    Louisiana Tech University.;

  • 授予单位 Louisiana Tech University.;
  • 学科 Biomedical engineering.;Nanotechnology.;Medicine.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 287 p.
  • 总页数 287
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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