首页> 外文会议>Symposia on Biomaterials for Drug Delivery and Tissue Engineering Nov 27-29, 2000, Boston, Massachusetts, U.S.A. >Effects of Block Lengths and Initial Water Content on the Swelling and Degradative Characteristics of an Injectable Poly(propylene fumarate-co-ethylene glycol) Block Copolymer Hydrogel
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Effects of Block Lengths and Initial Water Content on the Swelling and Degradative Characteristics of an Injectable Poly(propylene fumarate-co-ethylene glycol) Block Copolymer Hydrogel

机译:嵌段长度和初始含水量对注射式聚富马酸丙二醇酯-共-乙二醇嵌段共聚物水凝胶溶胀和降解特性的影响

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The overall goal of this project is to develop an in-situ polymerizable, biodegradable material for use in cardiovascular applications that minimizes non-specific cell adhesion and contains functional moieties for the attachment of peptides to induce specific cell attachment. A novel block copolymer has been developed incorporating poly(propylene fumarate) (PPF) and poly(ethylene glycol) which satisfies these criteria. PPF is a new biodegradable polymer currently being investigated for orthopedic and cardiovascular applications while PEG is a hydrophilic polymer that has been extensively studied for biomedical applications. The copolymer is chemically crosslinked with PEG diacrylate using an ammonium persulfate-ascorbic acid redox initiator system to form the hydrogel. The PEG and PPF block lengths can be varied to modulate the properties of the hydrogel formed. In this study, the following three parameters were studied, (1) PPF block length, (2) PEG block length, and (3) initial water content, were varied to examine their effects on swelling, degradation and elastic modulus. A factorial experimental design was implemented to assess which of these three parameters had the greatest impact on swelling, degradation and elastic modulus. Swelling was found to be most affected by the initial water content followed by PEG block length and PPF block length. The swelling of the hydrogels ranged from 48% water uptake with low initial water content to up to 77% water uptake with the high initial water content. After three weeks, degradation of the hydrogels ranged from 4-13% mass fraction lost. Elastic modulus was determined by tensile testing of the various hydrogel formulations and ranged from 0.4 to 7.7 MPa.
机译:该项目的总体目标是开发一种用于心血管应用的可原位聚合,可生物降解的材料,该材料可最大程度地减少非特异性细胞粘附,并包含用于肽段附着的功能部分,以诱导特异性细胞附着。已开发出满足这些标准的,包含聚(富马酸丙二醇酯)(PPF)和聚(乙二醇)的新型嵌段共聚物。 PPF是一种新型的可生物降解的聚合物,目前正在骨科和心血管领域进行研究,而PEG是一种亲水性的聚合物,已经在生物医学领域进行了广泛的研究。使用过硫酸铵-抗坏血酸氧化还原引发剂体系将该共聚物与PEG二丙烯酸酯化学交联以形成水凝胶。 PEG和PPF嵌段的长度可以改变以调节形成的水凝胶的性质。在这项研究中,研究了以下三个参数:(1)PPF嵌段长度,(2)PEG嵌段长度和(3)初始含水量,以检查它们对溶胀,降解和弹性模量的影响。进行了析因实验设计,以评估这三个参数中的哪一个对溶胀,降解和弹性模量的影响最大。发现溶胀受初始水含量,PEG嵌段长度和PPF嵌段长度的影响最大。水凝胶的溶胀程度从低初始水含量的48%吸水量到高初始水含量的77%吸水量不等。三周后,水凝胶的降解损失了4-13%的质量分数。弹性模量通过各种水凝胶制剂的拉伸测试确定,范围为0.4至7.7 MPa。

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