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The design, synthesis, and characterization of poly(carbonate-ester)s based on dihydroxyacetone for use as potential biomaterials.

机译:基于二羟基丙酮的聚(碳酸酯)的设计,合成和表征,可用作潜在的生物材料。

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摘要

The creation of new devices and materials with desirable biomedical characteristics, such as biocompatibility and easily tunable physico-chemical parameters, has played a key role in the advancement of the biomedical industry. In recent years, the combination of classical engineering principles with polymer chemistry has led to a wide range of materials that influence the manner in which drugs are delivered, tissues are engineered, and surgery is performed. The work presented in this thesis is focused on the design, synthesis, and characterization of a poly(carbonate-ester) biomaterial based on lactic acid (LA) and a carbonate form of dihydroxyacetone (DHAC) as vehicles for controlled release.;The goal of this work was to synthesize a variety of pLAx- co-DHACy copolymers and characterize their behavior to better understand their structure/function relationships. The results show that random copolymers based on dihydroxyacetone and lactic acid are easily and reliably producible, with unique characteristics. In vitro degradation studies showed that the poly(carbonate-ester)s had an unexpected degradation pattern, in that the carbonate bond was more labile to hydrolysis than that of the ester bond. The resulting degradation pattern made from these biomaterials did not appear to have an acidic interior environment, due to a lack of visible viscous core commonly seen with bulk degrading lactic acid based polymers. Due to the insolubility of the poly(carbonate-ester)s, exploration of copolymer degradation was determined by the development of a newly discovered technique to quantify dihydroxyacetone release from the matrix using the bicinchoninic acid assay.;Finally, the release kinetics and mechanism from these poly(carbonate-ester)s was studied following the incorporation of two different model proteins, bovine serum albumin and lysozyme. Their release behaviors and activities were analyzed to explore the controlled release capabilities of these materials and to identify their potential for the effective release of proteins.
机译:具有理想的生物医学特性(如生物相容性和易于调节的理化参数)的新设备和材料的创造,在生物医学产业发展中发挥了关键作用。近年来,经典工程原理与聚合物化学的结合已导致产生广泛的材料,这些材料会影响药物的递送,组织工程和手术方式。本论文的工作重点是基于乳酸(LA)和碳酸形式的二羟基丙酮(DHAC)作为控释载体的聚碳酸酯生物材料的设计,合成和表征。这项工作的目的是合成各种pLAx-co-DHACy共聚物并表征其行为,以更好地了解其结构/功能关系。结果表明,基于二羟基丙酮和乳酸的无规共聚物具有独特的特性,可轻松可靠地生产。体外降解研究表明,聚碳酸酯具有意想不到的降解模式,因为碳酸酯键比酯键更易水解。由这些生物材料制成的最终降解模式似乎没有酸性内部环境,这是由于缺乏可见的粘性核,而这种粘性核通常在本体降解的基于乳酸的聚合物中可见。由于聚(碳酸酯)的不溶性,探索降解共聚物的方法是通过开发一种新发现的技术来进行的,该技术使用二辛可宁酸测定法定量从基质中释放二羟基丙酮。最后,从中释放动力学和机理在掺入两种不同的模型蛋白,牛血清白蛋白和溶菌酶之后,对这些聚碳酸酯进行了研究。他们的释放行为和活动进行了分析,以探索这些材料的控制释放能力,并确定其有效释放蛋白质的潜力。

著录项

  • 作者

    Weiser, Jennifer Rose.;

  • 作者单位

    Cornell University.;

  • 授予单位 Cornell University.;
  • 学科 Chemistry Polymer.;Engineering Materials Science.;Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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