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Updated: Aug 24, 2026

Detection of Protease Activity by Fluorescent Peptide Zymography
Published on: January 20, 2019
Spatially Controlled Imaging of Proteases in Acidic Extracellular Milieu of Lesions Using DNA-Peptide-PNA Hybrid
Xiulin Yi1,2, Chuangui Sheng1,2, Zhichu Xiang3
1CAS Key Laboratory For Biomedical Effects of Nanomaterials and Nanosafety, National Center For Nanoscience and Technology, Beijing, China.
Abstract:
In situ detection of proteases has been extensively exploited for diverse biomedical applications; however, spatially controlled amplified imaging of extracellular proteases at diseased sites remains a significant challenge. Here, we report the design of DNA-peptide-PNA hybrid probes for sensitive imaging of protease activity within the acidic extracellular milieu of lesions, achieving enhanced spatial selectivity. In the strategy, both a pH-sensitive peptide and a protease-cleavable peptide substrate are rationally integrated into a DNA-based signal amplification platform. Specifically, a pH (low) insertion peptide (pHLIP) enables controlled localization of a peptide-substrate-engineered DNA initiator on the cell membrane under acidic conditions. Subsequent protease-mediated cleavage of the peptide substrate triggers signal amplification via initiator-mediated hybridization chain reaction (HCR), resulting in markedly improved spatial controllability and detection sensitivity for extracellular protease profiling in diseased microenvironments. Furthermore, the molecular imaging capability of the DNA-Peptide-PNA hybrid system was validated for matrix metalloproteinase 2/9 (MMP2/9) in vivo using both 4T1 tumor and osteoarthritis models. These results highlight the potential of this strategy as a versatile platform for the specific imaging of diverse enzymes within extracellular environments characterized by pH dysregulation.
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