Wang Jianhao, Li Jingyan, Li Jinchen, Liu Feifei, Zhou Xiang, Yao Yi, Wang Cheli, Qiu Lin, Jiang Pengju
School of Pharmaceutical Engineering and Life Science, Changzhou University, Changzhou, Jiangsu, 213164, China.
Changzhou Qianhong Bio-pharma Co. Ltd, Changzhou 213164, Jiangsu, People's Republic of China.
Anal Chim Acta. 2015 Oct 1;895:112-7. doi: 10.1016/j.aca.2015.09.012. Epub 2015 Sep 14.
A new method using fluorescence coupled capillary electrophoresis (CE-FL) for monitoring self-assembly and proteolytic cleavage of hexahistidine peptide capped quantum dots (QDs) inside a capillary has been developed in this report. QDs and the ATTO 590-labeled hexahistidine peptide (H6-ATTO) were injected into a capillary, sequentially. Their self-assembly inside the capillary was driven by a metal-affinity force which yielded a new fluorescence signal due to Förster resonance energy transfer (FRET). The highly efficient separation of fluorescent complexes and the FRET process were analyzed using CE-FL. The self-assembly of QDs and biomolecules was found to effectively take place inside the capillary. The kinetics of the assembly was monitored by CE-FL, and the approach was extended to the study of proteolytic cleavage of surface conjugated peptides. Being the first in-depth analysis of in-capillary nanoparticle-biomolecule assembly, the novel approach reported here provides inspiration to the development of QD-based FRET probes for biomedical applications.
本报告中开发了一种利用荧光耦合毛细管电泳(CE-FL)监测毛细管内六聚组氨酸肽封端量子点(QD)的自组装和蛋白水解切割的新方法。量子点和ATTO 590标记的六聚组氨酸肽(H6-ATTO)依次注入毛细管中。它们在毛细管内的自组装由金属亲和力驱动,由于福斯特共振能量转移(FRET)产生了新的荧光信号。使用CE-FL分析了荧光复合物的高效分离和FRET过程。发现量子点和生物分子的自组装在毛细管内有效发生。通过CE-FL监测组装动力学,并将该方法扩展到表面共轭肽的蛋白水解切割研究。作为对毛细管内纳米颗粒-生物分子组装的首次深入分析,本文报道的新方法为基于量子点的生物医学应用FRET探针的开发提供了灵感。