Jaturanpinyo Montree, Harada Atsushi, Yuan Xiaofei, Kataoka Kazunori
Department of Materials Engineering, Graduate School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
Bioconjug Chem. 2004 Mar-Apr;15(2):344-8. doi: 10.1021/bc034149m.
Recently, the polyion complex (PIC) micelle has been suggested as a promising carrier system for peptide and proteins. However, its utilities are limited by its sensitivity to the environment such as dilution and ionic strength of the solution. In this study, to overcome these obstructions, PIC micelles prepared from an anionic block copolymer, poly(ethylene glycol)-poly(alpha,beta-aspartic acid), and a cationic protein, trypsin, were cross-linked with glutaraldehyde through the Schiff base formation. On the basis of a light scattering technique, the results revealed an efficient resistance of the cross-linked PIC micelle to a high salt concentration, which was a key parameter controlling the structure of the PIC micelles. Moreover, the stability of trypsin after cross-linking was remarkably improved. Evidently, as a bionanoreactor and/or bionanoreservoir, the PIC micelles entrapping protein molecules in the cross-linked core reveal an improved stability, allowing their wide application in the fields of biotechnology and pharmaceutical sciences.
最近,聚离子复合物(PIC)胶束被认为是一种用于肽和蛋白质的很有前景的载体系统。然而,其效用受到对环境(如溶液稀释和离子强度)敏感性的限制。在本研究中,为克服这些障碍,由阴离子嵌段共聚物聚(乙二醇)-聚(α,β-天冬氨酸)和阳离子蛋白胰蛋白酶制备的PIC胶束通过席夫碱形成与戊二醛交联。基于光散射技术,结果表明交联后的PIC胶束对高盐浓度具有有效的抗性,高盐浓度是控制PIC胶束结构的关键参数。此外,交联后胰蛋白酶稳定性显著提高。显然,作为生物纳米反应器和/或生物纳米储存库,在交联核心中包裹蛋白质分子的PIC胶束显示出更高的稳定性,使其能够在生物技术和制药科学领域广泛应用。