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Synthesis, characterization and application in biomedicine of a novel chondroitin sulfate based hydrogel and bioadhesive.

机译:新型硫酸软骨素水凝胶和生物粘合剂的合成,表征及在生物医学中的应用。

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摘要

Clinically, there exists a need for adhesive biomaterials. There is room to improve upon what is currently on the market as it is either too toxic, lacks the required adhesive strength and/or lacks the desired degradation properties. The general goals of this thesis all focused on designing a biomaterial which would improve upon these shortcomings while at the same time allow for modifications to meet the needs for the specific application of interest. To accomplish this task, it was important to choose the appropriate composition and crosslinking chemistry which will allow the most flexibility. Chondroitin sulfate (CS) was chosen as the principle component of the hydrogel because it is a ubiquitous glycosaminoglycan (GAG) found in almost all tissues in the body. Many variants of CS exist with each one possessing unique biological activity allowing for tight control over these properties of the material. To modulate cell migration through the adhesive, polyethylene glycol (PEG) or blood was used as the second constituent. The former made the scaffold act as a cell barrier while the ladder could be used in varying concentrations to modulate cell adhesion and migration into the biomaterial. Also, the CS and blood components are both biodegradable and degradation can be controlled using various methods.;While the constituents were chosen to allow flexibility in the biological activity and cell migration into the scaffold, the crosslinking chemistry was chosen to allow control over the mechanical properties as well as to increase tissue adhesion. By functionalizing the carboxyl groups of the GAG with N-hydroxysuccinimide (NHS), the resulting chondroitin sulfate succinimidyl succinate (CS-NHS) molecule could react with primary amines on polymers to form a hydrogel as well as the primary amines on proteins comprising tissue to anchor the hydrogel to the tissue.;The material has been characterized and optimized for several applications. The applications described here include sealing of corneal wounds following cataract surgery, wound healing of the skin, and chondrogenic differentiation of hMSCs for treatment of arthritic conditions. In these applications, the CS based adhesive has shown considerable promise.
机译:临床上,需要粘合剂生物材料。由于其太有毒,缺乏所需的粘合强度和/或缺乏所需的降解特性,因此尚有待改进。本论文的总体目标都集中在设计一种可改善这些缺点的生物材料上,同时允许进行修改以满足特定兴趣应用的需求。为了完成此任务,选择合适的组成和交联化学以实现最大的灵活性非常重要。选择硫酸软骨素(CS)作为水凝胶的主要成分,因为它是人体几乎所有组织中普遍存在的糖胺聚糖(GAG)。存在许多CS变体,每个变体具有独特的生物学活性,从而可以严格控制材料的这些特性。为了调节通过粘合剂的细胞迁移,将聚乙二醇(PEG)或血液用作第二成分。前者使支架起到细胞屏障的作用,而梯子可以以不同的浓度用于调节细胞粘附和迁移到生物材料中。而且,CS和血液成分都是可生物降解的,并且可以使用各种方法控制降解。;虽然选择了成分以允许生物活性具有灵活性,并且细胞可以迁移到支架中,但是选择了交联化学成分可以控制机械特性以及增加组织粘附力。通过用N-羟基琥珀酰亚胺(NHS)官能化GAG的羧基,所得的硫酸软骨素琥珀酰亚胺琥珀酸酯(CS-NHS)分子可与聚合物上的伯胺反应形成水凝胶,以及构成组织的蛋白质上的伯胺。将水凝胶锚固到组织上;该材料已针对多种应用进行了表征和优化。本文描述的应用包括白内障手术后角膜伤口的密封,皮肤伤口的愈合以及hMSC的软骨分化,以治疗关节炎。在这些应用中,基于CS的粘合剂已显示出可观的前景。

著录项

  • 作者

    Strehin, Iossif.;

  • 作者单位

    The Johns Hopkins University.;

  • 授予单位 The Johns Hopkins University.;
  • 学科 Biology Cell.;Engineering Materials Science.;Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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