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Conception, synthese et caracterisation de nouvelles macromolecules branchees biocompatibles pour encapsuler des principes actifs hydrophobes.

机译:设计,合成和表征新型支链生物相容性大分子,以包裹疏水活性成分。

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摘要

The drug molecule vectorization is a very promising approach in terms of both medical and economical factors for the delivery of active substances with low bioavailability. In this context, the star polymers and dendrimers, symmetrical and branched macromolecules, seem to be more attractive solutions. Indeed, these structures can effectively combine a high stability in biological media and the ability to encapsulate active ingredients. Thanks to the well-defined architecture, they can achieve a high level of reproducibility of results, while avoiding the problem of polydispersity. In recent years, many dendritic structures have been proposed; however, the design of new effective dendritic nanocarriers is still relevant. This is due to many reasons such as related to biocompatibility, encapsulation efficiency of therapeutic agents, as well as economic reasons. In this project, new branched biocompatible macromolecules were designed, synthesized and evaluated. To increase their effectiveness as encapsulation agents for hydrophobic active principles, the structures of the proposed macromolecules include a hydrophobic central core on the basis of porphyrin, decanediol or modified triolein, and also a hydrophilic outer layer based on succinic acid and polyethylene glycol. The choice of structural elements of future dendrimers was based on the data on their biocompatibility and the results of our preliminary synthesis works, as well as the in silico simulations performed by using the method of molecular mechanics. The preliminary studies allowed for selecting the most promising compounds to effectively form polyesters macromolecules in well controlled manner, as well as to assess in advance the ability of future dendrimers to capture a drug molecule (itraconazole). During this phase, several new intermediates were obtained. The optimization of reaction conditions leading to high yields was performed. Based on the preliminary work, the assembly of new dendrimers of first and second generations was performed, by using the divergent and convergent synthesis approaches. The structures of new compounds were characterized by proton and 13C carbon NMR, FTIR, UV-Vis, elemental analysis, mass spectrometry, and GPC techniques. The biocompatibility of products was evaluated by cytotoxicity tests with MTT on murine RAW 262.7 macrophages. The ability to encapsulate hydrophobic active principles was studied by testing with itraconazole, an antifungal agent with low bioavalability. The size of nanoparticles formed in aqueous solutions was measured by the DLS technique. These measurements showed that all dendritic structures tend to form micelles, which excludes their application as unimolecular nanocapsules. The antifungal activity of itraconazole formulations with dendrimers was studied in a kind of a pathogenic fungus Candida albicans. These tests lead to the conclusion that to ensure the effectiveness of treatment, more control over the release of the active ingredient has been needed.
机译:就医学和经济因素而言,药物分子向量化是用于递送生物利用度低的活性物质的非常有前途的方法。在这种情况下,星形聚合物和树枝状聚合物,对称和支链的大分子似乎是更有吸引力的解决方案。实际上,这些结构可以有效地结合生物介质中的高稳定性和封装活性成分的能力。得益于定义明确的架构,它们可以实现高水平的结果重现性,同时避免了多分散性问题。近年来,已经提出了许多树状结构。然而,新型有效的树枝状纳米载体的设计仍然是有意义的。这是由于许多原因,例如与生物相容性,治疗剂的包封效率以及经济原因有关。在该项目中,设计,合成和评估了新的分支生物相容性大分子。为了提高其作为疏水活性成分的包封剂的功效,提出的大分子的结构包括基于卟啉,癸二醇或改性三油精的疏水中心核,以及基于琥珀酸和聚乙二醇的亲水外层。未来树枝状大分子的结构元素的选择是基于它们的生物相容性数据和我们初步合成工作的结果,以及使用分子力学方法进行的计算机模拟。初步研究允许选择最有前途的化合物,以受控方式有效地形成聚酯大分子,并提前评估未来树枝状聚合物捕获药物分子(伊曲康唑)的能力。在此阶段,获得了几种新的中间体。进行了导致高收率的反应条件的优化。在初步工作的基础上,采用发散和收敛的合成方法进行了第一代和第二代新树枝状聚合物的组装。通过质子和13 C碳NMR,FTIR,UV-Vis,元素分析,质谱和GPC技术对新化合物的结构进行了表征。通过MTT对鼠RAW 262.7巨噬细胞的细胞毒性测试,评估了产品的生物相容性。通过使用伊曲康唑(伊曲康唑)(一种生物利用度低的抗真菌剂)进行测试,研究了其包裹疏水活性成分的能力。通过DLS技术测量在水溶液中形成的纳米颗粒的尺寸。这些测量结果表明,所有树突结构都倾向于形成胶束,这排除了它们作为单分子纳米胶囊的应用。在一种致病真菌白色念珠菌中研究了伊曲康唑配树状聚合物的抗真菌活性。这些测试得出的结论是,为了确保治疗的有效性,需要进一步控制活性成分的释放。

著录项

  • 作者

    Elkin, Igor.;

  • 作者单位

    Universite de Montreal (Canada).;

  • 授予单位 Universite de Montreal (Canada).;
  • 学科 Pharmacy sciences.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 312 p.
  • 总页数 312
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 肿瘤学;
  • 关键词

  • 入库时间 2022-08-17 11:54:07

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