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Published on: January 6, 2026
Self-Healing Dye-Conjugated Nanobody Probe for Super-Resolution Imaging with Enhanced Photon Budget
Dongwen Shen1, Jiazhen Yang1, Ting Wang1
1School of Life Science and Technology, Key Laboratory of Developmental Genes and Human Disease, Southeast University, Nanjing, 210096, China.
Abstract:
Super-resolution microscopy imaging requires target-specific probes that deliver a high photon budget while minimizing perturbation to the protein of interest. Here, we report a nanobody probe generated by site-specific conjugation of a photostabilizer-fluorophore construct to an anti-GFP single-domain nanobody. This conjugate enhances the photon budget of the fluorophore by suppressing triplet-state populations via intramolecular triplet energy transfer, while simultaneously preserving nanomolar affinity for targeting GFP-tagged proteins. Compared to unmodified counterparts, the self-healing dye-conjugated nanobody exhibits a 38-83% excitation-power-dependent increase in solution molecular brightness and markedly enhanced single-molecule photophysics, yielding 6-fold and 42-fold increases in cumulative photon output under ambient and oxygen-scavenging conditions, respectively. When applied to GFP-tagged Nup96 protein in mammalian cells, the self-healing dye-conjugated nanobody proves significant advantage in single-molecule localization microscopy, where the improved photon budget and photoswitching kinetics directly improve localization precision. These results establish the self-healing dye-conjugated nanobody as a robust, ready-to-use probe for high-performance single-molecule localization-based super-resolution imaging.
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