Sabnis Abhimanyu, Wadajkar Aniket S, Aswath Pranesh, Nguyen Kytai T
Department of Bioengineering, University of Texas Southwestern Medical Center at Dallas, USA.
Nanomedicine. 2009 Sep;5(3):305-15. doi: 10.1016/j.nano.2008.11.003. Epub 2009 Feb 11.
A smart protein delivery system for wound healing applications was developed using composite nanoparticle hydrogels that can release protein in a temperature-responsive manner. This system can also be formed in situ in the presence of ultraviolet light and Irgacure 2959 photoinitiator. The system consists of temperature-sensitive poly(N-isopropylacrylamide-co-acrylamide) (PNIPAM-AAm) nanoparticles embedded in a poly(ethylene glycol) diacrylate (PEGDA) matrix. A factorial analysis was performed to evaluate the effects of PEGDA concentration (10% and 15% w/v) and PEGDA molecular weight (MW; 3.4 kDa and 8 kDa), as well as PNIPAM-AAm nanoparticle concentration (2% and 4% w/v) and temperature (23 degrees C and 40 degrees C) on the protein release profiles and swelling ratios of the hydrogels. Results indicate that PNIPAM-AAm nanoparticle concentration and temperature were the most important factors affecting the protein release during the burst release phase. Additionally, PEGDA MW was the most important factor affecting the protein release in the plateau region. It was also important in controlling the hydrogel swelling ratio. A dual-layered hydrogel was further developed to produce a protein delivery system with a better sustained release. These findings have improved our understanding of the composite hydrogel systems and will help in tailoring future systems with desired release profiles.
A smart protein delivery system for wound healing applications using composite nanoparticle hydrogels that can release protein in a temperature-responsive manner is reported in this paper. Systems like this may aid in optimal would healing in the surgical and trauma-related settings.
利用复合纳米颗粒水凝胶开发了一种用于伤口愈合的智能蛋白质递送系统,该水凝胶能够以温度响应方式释放蛋白质。该系统在紫外线和光引发剂Irgacure 2959存在的情况下也可原位形成。该系统由嵌入聚(乙二醇)二丙烯酸酯(PEGDA)基质中的温度敏感型聚(N-异丙基丙烯酰胺-共-丙烯酰胺)(PNIPAM-AAm)纳米颗粒组成。进行了析因分析,以评估PEGDA浓度(10%和15% w/v)、PEGDA分子量(MW;3.4 kDa和8 kDa),以及PNIPAM-AAm纳米颗粒浓度(2%和4% w/v)和温度(23℃和40℃)对水凝胶的蛋白质释放曲线和溶胀率的影响。结果表明,PNIPAM-AAm纳米颗粒浓度和温度是影响突发释放阶段蛋白质释放的最重要因素。此外,PEGDA分子量是影响平台期蛋白质释放的最重要因素。它在控制水凝胶溶胀率方面也很重要。进一步开发了一种双层水凝胶,以生产具有更好缓释效果的蛋白质递送系统。这些发现增进了我们对复合水凝胶系统的理解,并将有助于定制具有所需释放曲线的未来系统。
本文报道了一种用于伤口愈合的智能蛋白质递送系统,该系统使用能够以温度响应方式释放蛋白质的复合纳米颗粒水凝胶。这样的系统可能有助于在手术和创伤相关环境中实现最佳伤口愈合。