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Modeling, design, and validation of fluorescent spherical enzymatic glucose microsensors using nanoengineered polyelectrolyte coatings.

机译:使用纳米工程聚电解质涂层的荧光球形酶葡萄糖微传感器的建模,设计和验证。

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摘要

In this dissertation, the modeling, design, and function of fluorescent spherical enzymatic microsensors for minimally-invasive diabetic monitoring are described. The devices reported herein are novel and their experimental construction and theoretical analysis have not been previously reported, thus laying the foundation for an intensive set of studies. These sensors are based on the encapsulation of an enzymatic fluorescent assay for glucose within hydrogel alginate microspheres with diameters on the order of tens of microns, which are of the appropriate size for intradermal implantation. A novel feature of these sensors is the use of multifunctional nanoengineered ultrathin multilayer polyelectrolyte coatings on the surface of the microspheres, which play a key role in the proper function of the sensors. These sensors are designed to be implanted in the dermis for continuous monitoring of interstitial glucose, with either discrete or continuous transdermal interrogation using an external light source and emission detector. These minimally-invasive sensors could eliminate some of the pain and bother associated with self blood glucose monitoring, thereby increasing patient compliance and decreasing the incidence of deleterious complications.; The work presented here describes the development and implementation of computational tools for sensor characterization and design, as well as the construction and testing of actual sensor prototypes. The fundamental behavior of spherical enzymatic glucose microsensors with micro- and nanoscale features was investigated using a novel computational model of the sensors, and a genetic algorithm was used for evolutionary design optimization of fluorescent glucose sensors with predefined response characteristics. A major finding of the mathematical modeling work was that the response of the sensors can be improved dramatically with the application of polyelectrolyte nanofilm coatings as thin as 12 nm. Genetic algorithm results demonstrated that sensors with diameters on the order of 100 mum, enzyme concentrations in the 1--3 mM range, and 10--60 nm thick nanofilm coatings are predicted to result in highly desirable response characteristics. Sensor prototypes were characterized with regard to their physicochemical attributes, spectral characteristics, stability, and reversible ratiometric response to glucose transients in vitro. The sensors exhibited sensitive (0.02% change in ratio per mg/dL) and linear responses to glucose over the physiologically significant 0--600 mg/dL glucose range, and for the first time, true continuous sensing of glucose using enzymatic bead-based fluorescent glucose sensors was demonstrated, with response times on the order of two minutes. As a consequence of this work, it has been determined that the concept of enzymatic-based fluorescent microsphere glucose sensors for intradermal monitoring is feasible, and warrants further research.
机译:本文描述了用于微创糖尿病监测的荧光球形酶微传感器的建模,设计和功能。本文报道的装置是新颖的,并且它们的实验构造和理论分析以前未曾报道过,因此为深入研究奠定了基础。这些传感器基于在水凝胶藻酸盐微球中的葡萄糖的酶促荧光测定法的封装,直径在数十微米的数量级,其直径适合皮内植入。这些传感器的新功能是在微球表面上使用多功能纳米工程超薄多层聚电解质涂层,这些涂层在传感器的正常功能中起着关键作用。这些传感器设计用于植入真皮中,以连续监测组织间葡萄糖,并使用外部光源和发射检测器进行离散或连续透皮询问。这些微创传感器可以消除一些与自我血糖监测有关的痛苦和麻烦,从而增加患者依从性并减少有害并发症的发生。本文介绍的工作描述了用于传感器特性和设计的计算工具的开发和实现,以及实际传感器原型的构建和测试。使用传感器的新型计算模型研究了具有微米和纳米级特征的球形酶葡萄糖微传感器的基本行为,并使用遗传算法对具有预定义响应特性的荧光葡萄糖传感器进行进化设计优化。数学建模工作的一个主要发现是,通过使用厚度为12 nm的聚电解质纳米薄膜涂层,可以显着改善传感器的响应。遗传算法结果表明,直径在100微米量级,酶浓度在1--3 mM范围内和10--60 nm厚的纳米膜涂层的传感器预计将产生非常理想的响应特性。传感器原型的理化特性,光谱特征,稳定性和对葡萄糖瞬变的可逆比例响应均在体外得到了表征。传感器在生理上显着的0--600 mg / dL葡萄糖范围内表现出灵敏的(每mg / dL比率的变化为0.02%)和对葡萄糖的线性响应,并且首次使用基于酶的微珠技术对葡萄糖进行真正的连续感测证实了荧光葡萄糖传感器,其响应时间为两分钟。由于这项工作的结果,已经确定用于皮内监测的基于酶的荧光微球葡萄糖传感器的概念是可行的,值得进一步研究。

著录项

  • 作者

    Brown, Jonathan Quincy.;

  • 作者单位

    Louisiana Tech University.;

  • 授予单位 Louisiana Tech University.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 222 p.
  • 总页数 222
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

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