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Updated: Jan 11, 2026

Fast Enzymatic Processing of Proteins for MS Detection with a Flow-through Microreactor
Published on: April 6, 2016
Rapid Mass Spectrometric Identification of the Radical Intermediates in Nanozyme-Catalyzed Reactions Using a
Liu Qu1, Hong-Yuan Chen1, Jun Hu1,2
1State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.
Abstract:
The capture and identification of reactive intermediates, especially the short-lived radical species, play essential roles in elucidating the reaction mechanisms in nanozyme catalysis. To permit the direct characterization of the short-lived intermediates at the solid-liquid catalytic interface with electrospray ionization mass spectrometry (ESI-MS), this work develops a tip-based dual-function nanozyme microreactor/ion emitter. This innovative device was fabricated by decorating a thin-layer nanozyme deposit (e.g., the iron oxide-based nanozyme with peroxidase-like activity) into the inner surface of a microsized glass capillary. Unlike the conventional bottom-up wet-chemistry approaches, the immobilization of the nanozyme was proceeded via a top-down and thermal oxidation method. This procedure enables a clog-free production of the desired thin-layer nanozyme into the front tip of a tapered capillary, with a length of only a few microns. By employing a nanozyme-decorated ion emitter, we achieved the direct detection of various radical intermediates in the peroxidase-like nanozyme-catalyzed chromogenic reactions. Beyond the classical chromogenic reactions, the practicability of the integrative device was further characterized by probing a widely employed fluorogenic reaction, i.e., the deacetylation conversion of Amplex Red (AR) to resorufin. Notably, a radical intermediate (i.e., AR•+) was successfully detected, providing direct evidence supporting the previously speculated radical-mediated reaction mechanism. This work established an effective and convenient method to implement cutting-edge nanozyme catalysis with powerful in situ mass spectrometry. We believe it holds promise for broader application to the in-depth explorations of diverse nanozyme-catalyzed reactions.
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