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Protein modification with poly(ethylene glycol): An approach towards protein stabilization during encapsulation and release from biocompatible polymers.

机译:用聚乙二醇进行蛋白质修饰:一种在包封和从生物相容性聚合物释放过程中实现蛋白质稳定的方法。

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摘要

Encapsulation and delivery of pharmaceutically relevant proteins from biodegradable polymers, such as, poly(lactide-co-glycolic) acid (PLGA) using the solid-in-oil-in-oil (s/o/o) and the solid-in-oil-in-water (s/o/w) encapsulation techniques has been established and is of major interest to health care sciences. However, the success of this approach is still hindered by the fact that proteins are sensitive and labile. This frequently causes structural perturbation, aggregation, and inactivation by encapsulation processes. In addition, low encapsulation efficiencies and huge initial burst release are major drawbacks of these techniques.; To overcome these problems I tested whether physical stability of model proteins could be improved by formulating them with poly(ethylene) glycol (PEG). PEG was either employed as an excipient or covalently attached to the protein surface. The model proteins bovine serum albumin (BSA), horseradish peroxidase (HRP) and alpha-chymotrypsin were modified or colyophilized with PEGs with different molecular weights at different molar ratios and encapsulated into PLGA microspheres using s/o/o and s/o/w protocols.; My results show that the use of PEG as excipient preserves the structural integrity of bovine serum albumin (BSA) during encapsulation by the s/o/o method. Size exclusion chromatography-high performance liquid chromatography result shows that PEG minimizes the formation of soluble BSA aggregates during the initial 24 h of in vitro release. Co-lyophilization of BSA with PEG affords high encapsulation efficiency of ca. >90% with microsphere sizes of few micrometers.; FTIR, UV/Vis, and Raman spectroscopic results show that HRP covalently modified with PEG resists lyophilization-induced structural changes and exhibits a native-like structure in organic solvents. Stability data shows that PEG-modification significantly improves HRP stability during s/o/o encapsulation and release from PLGA microspheres. For example, the amount of HRP insoluble aggregates dropped over 5 fold from ca. 5% to 1% and the retained specific activity increased from 50% to >95%. Furthermore, modification of HRP with PEG increases HRP encapsulation efficiency to >98% and reduces initial burst release from 70% to 23%. PEG-modification also improves HRP activity during in vitro release and reduces the amount of insoluble aggregates formed during release from 11% to 3%. (Abstract shortened by UMI.)
机译:使用油包油中的固体(s / o / o)和油包固体中的可生物降解的聚合物,例如聚(丙交酯-共-乙醇酸)酸(PLGA),对药物相关蛋白质进行封装和递送水包油(s / o / w)封装技术已经建立,并且对医疗保健科学非常感兴趣。但是,这种方法的成功仍然受到蛋白质敏感和不稳定的事实的阻碍。这经常通过封装过程引起结构扰动,聚集和失活。另外,低封装效率和巨大的初始突发释放是这些技术的主要缺点。为了克服这些问题,我测试了通过与聚乙二醇(PEG)配制是否可以改善模型蛋白的物理稳定性。 PEG用作赋形剂或共价附于蛋白质表面。将模型蛋白牛血清白蛋白(BSA),辣根过氧化物酶(HRP)和α-胰凝乳蛋白酶用具有不同分子量的不同分子量的PEG修饰或共冻干,并使用s / o / o和s / o / w封装到PLGA微球中协议。我的结果表明,使用PEG作为赋形剂,在通过s / o / o方法包封过程中可以保留牛血清白蛋白(BSA)的结构完整性。尺寸排阻色谱-高效液相色谱结果表明,在体外释放的最初24小时内,PEG使可溶性BSA聚集体的形成最小化。 BSA与PEG的共冻干可提供约20的高封装效率。 > 90%的微球尺寸只有几微米。 FTIR,UV / Vis和拉曼光谱结果表明,用PEG共价修饰的HRP抵抗了冻干诱导的结构变化,并在有机溶剂中表现出天然的结构。稳定性数据表明,PEG修饰在s / o / o封装和从PLGA微球释放过程中显着提高了HRP稳定性。例如,HRP不溶性聚集体的量从约5倍下降了5倍。从5%增加到<1%,保留的比活性从50%增加到> 95%。此外,用PEG修饰HRP可以将HRP封装效率提高到> 98%,并将初始爆发释放从70%降低到23%。 PEG修饰还可提高体外释放过程中的HRP活性,并将释放过程中形成的不溶性聚集物的数量从11%降低至3%。 (摘要由UMI缩短。)

著录项

  • 作者

    Al-Azzam, Wasfi.;

  • 作者单位

    University of Puerto Rico, Rio Piedras (Puerto Rico).;

  • 授予单位 University of Puerto Rico, Rio Piedras (Puerto Rico).;
  • 学科 Biophysics Medical.; Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 230 p.
  • 总页数 230
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物物理学;生物化学;
  • 关键词

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