Department of Applied Chemistry, Xi'an University of Technology, Xi'an 710048, China.
CAS Center for Excellence in Nanoscience, CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, National Center for Nanoscience and Technology (NCNST), University of Chinese Academy of Sciences, No. 11 Beiyitiao, Zhongguancun, Beijing 100190, China.
J Phys Chem B. 2021 Sep 16;125(36):10224-10231. doi: 10.1021/acs.jpcb.1c06443. Epub 2021 Sep 8.
pH values play an important role in various cell biological processes. Abnormal pH values in living systems are frequently associated with the development of diseases such as cancers, infection, and other diseases. Real-time monitoring of the changes of pH values will give us the significant indication for these diseases' progression. Within those pH-sensitive imaging probes, aggregation-induced emission (AIE) molecules exhibit great potential in aqueous imaging environment due to their high fluorescence quantum yield and stability. However, the modulation of the AIE probe with pH sensitivity and light-up property face challenges. Here, we introduced a new glycopeptide-modified AIE probe () based on the optimized solid-phase peptide synthesis approach. The response to pH of the peptide: DDDD progression changed hydrophobicity and hydrophilicity, resulting in the change of the amphipathicity balance. When modulating the pH from 5.5 to 8.0, the adverse protonation of the peptide induced assembled nanostructure transformation from nanolamellae to nanomicelles. Meanwhile, the pH-induced charge change in peptides can greatly influence the microenvironment of the AIEgen, resulting in the increase of fluorescence intensity.
pH 值在各种细胞生物学过程中起着重要作用。活系统中的异常 pH 值通常与癌症、感染和其他疾病的发展有关。实时监测 pH 值的变化将为这些疾病的进展提供重要指示。在这些 pH 敏感的成像探针中,聚集诱导发射(AIE)分子由于其高荧光量子产率和稳定性,在水相成像环境中具有很大的应用潜力。然而,具有 pH 敏感性和点亮特性的 AIE 探针的调制面临挑战。在这里,我们基于优化的固相肽合成方法,引入了一种新的糖肽修饰的 AIE 探针()。随着 pH 值从 5.5 增加到 8.0,肽:DDDD 的进展对 pH 的响应改变了疏水性和亲水性,导致两亲平衡的变化。当调节 pH 值从 5.5 到 8.0 时,肽的不利质子化诱导组装纳米结构从纳米片到纳米胶束的转变。同时,肽中的 pH 诱导电荷变化会极大地影响 AIEgen 的微环境,导致荧光强度增加。