Bárány-Wallje Elsa, Andersson August, Gräslund Astrid, Mäler Lena
Department of Biochemistry and Biophysics, The Arrhenius Laboratories, Stockholm University, S-106 91, Stockholm, Sweden.
J Biomol NMR. 2006 Jun;35(2):137-47. doi: 10.1007/s10858-006-9008-y. Epub 2006 May 17.
In this study we investigated the dynamic behavior of the chimeric cell-penetrating peptide transportan in membrane-like environments using NMR. Backbone amide 15N spin relaxation was used to investigate the dynamics in two bicelles: neutral DMPC bicelles and partly negatively charged DMPG-containing bicelles. The structure of the peptide as judged from CD and chemical shifts is similar in the two cases. Both the overall motion as well as the local dynamics is, however, different in the two types of bicelles. The overall dynamics of the peptide is significantly slower in the partly negatively charged bicelle environment, as evidenced by longer global correlation times for all measured sites. The local motion, as judged from generalized order parameters, is for all sites in the peptide more restricted when bound to negatively charged bicelles than when bound to neutral bicelles (increase in S2 is on average 0.11 +/- 0.07). The slower dynamics of transportan in charged membrane model systems cause significant line broadening in the proton NMR spectrum, which in certain cases limits the observation of 1H signals for transportan when bound to the membrane. The effect of transportan on DMPC and DHPC motion in zwitterionic bicelles was also investigated, and the motion of both components in the bicelle was found to be affected.
在本研究中,我们使用核磁共振(NMR)研究了嵌合细胞穿透肽转运蛋白(transportan)在类膜环境中的动态行为。利用主链酰胺15N自旋弛豫来研究其在两种双分子层中的动力学:中性二肉豆蔻酰磷脂酰胆碱(DMPC)双分子层和部分带负电荷的含二肉豆蔻酰磷脂酰甘油(DMPG)双分子层。从圆二色光谱(CD)和化学位移判断,肽在两种情况下的结构相似。然而,在这两种类型的双分子层中,肽的整体运动以及局部动力学都是不同的。在部分带负电荷的双分子层环境中,肽的整体动力学明显较慢,所有测量位点的全局相关时间更长就证明了这一点。从广义序参量判断,当肽与带负电荷的双分子层结合时,其所有位点的局部运动比与中性双分子层结合时受到更多限制(S2平均增加0.11±0.07)。转运蛋白在带电膜模型系统中较慢的动力学导致质子NMR谱线明显展宽,在某些情况下,这限制了观察到转运蛋白与膜结合时的1H信号。我们还研究了转运蛋白对两性离子双分子层中DMPC和二氢磷脂酰胆碱(DHPC)运动的影响,发现双分子层中两种成分的运动都受到了影响。