Aggregation-induced emission for the detection of peptide ligases with improving ligation efficiency

化学 结扎 DNA连接酶 肽 化学结扎 排序酶A 荧光 组合化学 生物物理学 检出限 分析物 生物化学 色谱法 酶 分子生物学 物理 基因 生物 量子力学 细菌蛋白
作者
Gang Liu,Fengli Gao,Xiupei Yang,Jingyi Zhang,Suling Yang,Yuanyuan Li,Lin Liu
出处
期刊:Analytica Chimica Acta [Elsevier BV]
卷期号:1284: 341994-341994 被引量:2
标识
DOI:10.1016/j.aca.2023.341994
摘要

Monitoring peptide ligase activity is of great significance for biological research, medical diagnosis, and drug discovery. The current methods for the detection of peptide ligases suffer from the limitations of high background signal, elaborate design of substrate, and high reversibility of ligation reaction. In this work, we proposed a simple and sensitive method for ligase detection with reducing ligation reversibility on the basis of aggregation-induced emission (AIE) mechanism.The peptide probes labeled with AIE luminogens (AIEgens) were water-soluble and emitted weak fluorescence. After ligation reaction, the enzymatic products with AIEgens showed high hydrophobicity and could readily assembly into aggregates, thus lighting up the fluorescence. More interestingly, the formation of aggregates pushed the equilibrium to the generation of the desired ligation products, thus improving the catalytic efficiency by driving the reaction towards completion. The ligation reaction conversion rate (>80 %) is significantly higher than that without blocking the reversibility with additional treatment. With sortase A (SrtA) as the analyte example, the detection limit of this method was found to be 0.01 nM with a linear range of 0-50 nM. The system was applied to evaluate the inhibition efficiency of berberine chloride and quercetin and determine the activity of SrtA in serum, lysate and Staphylococcus aureus with satisfactory results.This study indicated that the ligation efficiency and detection sensitivity can be improved by reducing ligation reversibility through AIE phenomenon. The proposed strategy could be used for the detection of other peptide ligases by adopting sequence-specific peptide substrates.
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