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bioRxiv · 10.64898/2026.06.30.735531

A High-Affinity Nanobody Recognizing mNeonGreen Enables Versatile Biochemical, Cellular, and in vivo Applications.

Abstract

mNeonGreen (mNG) is among the brightest and most photostable monomeric green fluorescent proteins and is widely used for protein tagging. Here, we present sdAb(mNG), a high-affinity single-domain antibody (sdAb) that enables biochemical capture, imaging, and manipulation of mNG-tagged proteins. A 1.26 [A] crystal structure reveals an extensive interaction surface between mNG and sdAb(mNG), accounting for its high affinity (KD = 0.39 nM) and robust target recognition across diverse experimental conditions. This allows a single sdAb to support applications that typically require multiple specialized tools. We demonstrate the utility of sdAb(mNG) in several example applications including highly specific immunoprecipitation, direct immunofluorescence, and super-resolution imaging. Importantly, sdAb(mNG) retains high-performance target recognition even in intracellular environments. When expressed as an intrabody in living mammalian cells, sdAb(mNG) enables relocalization of mNG-tagged proteins to defined compartments or visualization of synaptic vesicle transport in primary neurons. In zebrafish, fusion of sdAb(mNG) to an F-box degradation domain induces cell-autonomous depletion of an endogenous mNG-tagged transcription factor and produces a clear developmental phenotype. These findings establish sdAb(mNG) as a versatile and robust affinity reagent that converts mNG from a passive fluorescent reporter into a multifunctional handle for imaging, proteomics, and programmable manipulation of endogenous and engineered proteins.

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BibTeXRIS

Gere-Becker, M., Funk, L.-M., Groeger, M., Kilisch, M., Najafi, P., Koenig, F., Aloisi, F., Song, X., Davis, L. C., Galione, A., Hafeez, S., Martin, B. L., Fornasiero, E. F., Kalienkova, V., Reinmuth, L., Kursula, P., Goetzke, H., Opazo, F., Frey, S.. 2026-07-01. A High-Affinity Nanobody Recognizing mNeonGreen Enables Versatile Biochemical, Cellular, and in vivo Applications.. https://doi.org/10.64898/2026.06.30.735531

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