Kong Weijun, Li Qi, Wang Wei, Zhao Xiaoning, Jiang Shenglong, Zheng Tianhua, Zhang Qun, Shen Wen, Cui Hua
Department of Chemistry , CAS Key Laboratory of Soft Matter Chemistry , iChEM (Collaborative Innovation Center of Chemistry for Energy Materials) , University of Science and Technology of China , Hefei , Anhui 230026 , P. R. China . Email:
State Key Laboratory of Analytical Chemistry for Life Science , School of Chemistry and Chemical Engineering , Nanjing University , Nanjing 210023 , P. R. China . Email:
Chem Sci. 2019 Apr 30;10(21):5444-5451. doi: 10.1039/c9sc00954j. eCollection 2019 Jun 7.
Chemiluminescence (CL) functionalized materials have found tremendous value in developing CL assays for clinical assays and point-of-care tests. To date, the design and optimization of these materials have mainly relied on conventional trial-and-error procedures in which the ensemble performance is evaluated using conditional experiments. Here we have built an optical microscope to acquire the CL emission from single magnetic-polymer hybrid microbeads functionalized with luminol analogues, and to access the CL kinetics of each individual particle. It was incidentally found that a minor subpopulation of microbeads exhibited intense and delayed CL emission while the majority showed transient and weak emission. Structural characterization of the very same individual particles uncovered that the amorphous multi-core microstructures were responsible for the enhanced encapsulation efficiency and optimized CL reaction kinetics. Guided by this knowledge stemming from single particle CL imaging, the synthesis procedure was rationally optimized to enrich the portion of microbeads with better CL performance, which was validated by both single particle imaging and the significantly improved analytical performance at the ensemble level. The present work not only demonstrates the CL imaging and CL kinetics curve of single microbeads for the first time, but also sets a clear example showing the capability of single particle studies to investigate the structure-activity relationship in a bottom-up manner and to help the rational design of ensemble materials with improved performance.
化学发光(CL)功能化材料在开发用于临床检测和即时检测的CL分析方法中具有巨大价值。迄今为止,这些材料的设计和优化主要依赖于传统的试错程序,其中通过条件实验评估整体性能。在此,我们构建了一台光学显微镜,用于获取用鲁米诺类似物功能化的单个磁性聚合物杂化微珠的CL发射,并获取每个单独颗粒的CL动力学。偶然发现,一小部分微珠表现出强烈且延迟的CL发射,而大多数微珠表现出瞬态且微弱的发射。对同一单个颗粒的结构表征发现,无定形多核微结构导致了更高的包封效率和优化的CL反应动力学。基于单颗粒CL成像获得的这一认识,对合成过程进行了合理优化,以富集具有更好CL性能的微珠部分,这通过单颗粒成像和整体水平上显著提高的分析性能得到了验证。本工作不仅首次展示了单个微珠的CL成像和CL动力学曲线,还明确例证了单颗粒研究以自下而上的方式研究结构 - 活性关系以及帮助合理设计具有改进性能的整体材料的能力。