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A Colorimetric Assay that Specifically Measures Granzyme B Proteolytic Activity: Hydrolysis of Boc-Ala-Ala-Asp-S-Bzl
Published on: November 28, 2014
Real-Time In Situ Imaging of Immunotherapy Efficacy: A DNA Nanowire-Based Biosensor for Granzyme A-Mediated APE1
Ziyue Qiu1, Luyin Zhang1, Yating Hou1
1NMPA Key Laboratory for Research and Evaluation of Drug Metabolism, Guangdong Provincial Key Laboratory of New Drug Screening, School of Pharmaceutical Sciences, Southern Medical University, Guangzhou510515, China.
Abstract:
Real-time monitoring of natural killer (NK) cell-mediated cancer immunotherapy efficacy at the cellular and organismal levels remains a critical challenge, primarily due to the ultra-low abundance of Granzyme A (GzmA) delivered into target cells, its rapid spatiotemporal dynamics, and the scarcity of suitable in situ imaging probes. Here, we present a DNA nanowire-based biosensor that leverages a spatially confined catalytic hairpin assembly (SCCHA) system for the real-time in situ imaging of immunotherapy efficacy, achieved by sensing GzmA-induced apurinic/apyrimidinic endonuclease 1 (APE1) inactivation. This biosensor integrates an APE1-responsive molecular beacon (MB) with a spatially organized CHA amplification circuit on a rigid DNA nanowire scaffold. In tumor cells with high endogenous APE1 activity, cleavage of the MB initiates a confined CHA reaction, yielding a strong fluorescence readout. Upon NK cell attack, delivered GzmA specifically inactivates intracellular APE1, thereby suppressing CHA signal amplification and producing a distinct fluorescence attenuation that dynamically visualizes NK cell cytotoxicity. Owing to the spatial confinement effect of the DNA nanowire, the biosensor achieved a 6.44-fold improvement in sensitivity over conventional free-diffusion CHA system. This platform enabled real-time visualization of NK cell-tumor cell interactions, and accurately reported NK cell cytotoxicity through GzmA-mediated APE1 inactivation. In vivo experiments further demonstrated its capability in evaluating immunotherapy efficacy. Collectively, this DNA nanowire-based biosensor provides a highly sensitive and reliable in situ imaging toolkit for evaluating cancer immunotherapy in real time, offering a promising translational approach for preclinical drug screening and personalized immunotherapeutic monitoring.

