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July 26, 2011ChemBioChem285 citationsOpen Access

Development of SNAP‐Tag Fluorogenic Probes for Wash‐Free Fluorescence Imaging

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XSXiaoli SunAZAihua ZhangBBBrenda Baker

Key Points

  • This research aims to develop novel fluorogenic probes for improved labeling of SNAP-tag fusion proteins in living cells.
  • Designed fluorogenic probes that label SNAP-tag proteins without washing.
  • Utilized intramolecularly quenched probes for imaging cell surface-localized proteins.
  • Characterized a fast-labeling variant of SNAP-tag for increased reactivity with substrates.
  • The fluorogenic probes significantly reduced background fluorescence by increasing specificity.
  • SNAP(f) showed up to tenfold improvement in reactivity towards benzylguanine.
  • Demonstrated enhanced sensitivity for imaging protein dynamics in living cells.

Abstract

The ability to specifically attach chemical probes to individual proteins represents a powerful approach to the study and manipulation of protein function in living cells. It provides a simple, robust and versatile approach to the imaging of fusion proteins in a wide range of experimental settings. However, a potential drawback of detection using chemical probes is the fluorescence background from unreacted or nonspecifically bound probes. In this report we present the design and application of novel fluorogenic probes for labeling SNAP-tag fusion proteins in living cells. SNAP-tag is an engineered variant of the human repair protein O(6)-alkylguanine-DNA alkyltransferase (hAGT) that covalently reacts with benzylguanine derivatives. Reporter groups attached to the benzyl moiety become covalently attached to the SNAP tag while the guanine acts as a leaving group. Incorporation of a quencher on the guanine group ensures that the benzylguanine probe becomes highly fluorescent only upon labeling of the SNAP-tag protein. We describe the use of intramolecularly quenched probes for wash-free labeling of cell surface-localized epidermal growth factor receptor (EGFR) fused to SNAP-tag and for direct quantification of SNAP-tagged β-tubulin in cell lysates. In addition, we have characterized a fast-labeling variant of SNAP-tag, termed SNAP(f), which displays up to a tenfold increase in its reactivity towards benzylguanine substrates. The presented data demonstrate that the combination of SNAP(f) and the fluorogenic substrates greatly reduces the background fluorescence for labeling and imaging applications. This approach enables highly sensitive spatiotemporal investigation of protein dynamics in living cells.

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Cite This Study

Sun et al. (2011) studied this question.

synapsesocial.com/papers/69daa2688988aeabbe6870a4https://doi.org/10.1002/cbic.201100173
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1SNAPpa: A Photoactivatable SNAP-tag for the Spatiotemporal Control of Protein Labeling2025
  2. 2Induced degradation of SNAP-fusion proteins2024
  3. 3SNAP-tag2: faster and brighter protein labeling2024 · 5 citations
  4. 4Brightening Proteins: Fluorogenic Probes with a Chemical Switch for Protein Tag Labeling Technology2026
  5. 5FLEXTAG: A Small and Self-renewable Protein Labeling System for Anti-fading Multi-color Super-resolution Imaging2025