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Updated: Apr 18, 2026

MicroRNA Amplification and Recognition through Locked-nucleic-acid In situ Hybridization as a Novel Detection and Quantification Method
Published on: October 7, 2025
Programmable DNA-Based NIR-II Molecular Probes for Hepatotoxicity-Associated MicroRNA Imaging In Vivo
Kaiqiang Zeng1, Wen Li1, Chongyang Li1
1State Key Laboratory of Chemo and Biosensing, College of Chemistry and Chemical Engineering, Hunan Provincial Key Laboratory of Biomacromolecular Chemical Biology, Hunan University, Changsha 410082, P. R. China.
Abstract:
DNA-based molecular probes are powerful, programmable tools for molecular sensing but are largely confined to the visible spectrum, where poor tissue penetration obstructs their deep-tissue imaging applications. While NIR-II fluorescence offers profound advantages for deep-tissue imaging, the transition of these probes into this optimal window is obstructed by the scarcity of high-performance fluorophore-quencher combinations. Here, we introduce a synergistic design strategy that overcomes this limitation by coengineering a high-brightness NIR-II emitter and its spectrum-matched quencher. We first created the high-brightness NIR-II emitter by stoichiometrically conjugating a DNA strand and a cyanine dye to an albumin scaffold. This encapsulation generates a stable and bright NIR-II tail emission with an NIR-II photoluminescence quantum yield 10-fold higher than that of commercial NIR-II dyes, enabling tissue penetration beyond 8 mm. We then rationally design the quencher via a symmetry-breaking strategy on the cognate chromophore, a one-step conversion that precisely aligns its absorption with the emitter's peak emission. This approach yields the DAC-783/Q783 combination, which exhibits a significantly higher quenching efficiency than a conventional tail-emission-matched quencher and enables robust DNA-based NIR-II molecular probes (NMPs). As a proof of concept, a probe targeting microRNA-122 (NMP-122) significantly outperforms conventional visible-window probes in deep tissue and enables noninvasive, real-time monitoring of drug-induced liver injury in living mice. This work extends the operational window of molecular probes into the NIR-II region for the first time and, more broadly, establishes a validated and generalizable blueprint for codesigning custom-designed fluorophore-quencher combinations, paving a new pathway to the clinical translation of NIR-II DNA nanotechnology.
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