A Near-Infrared Fluorescent Dye with Tunable Emission Wavelength and Stokes Shift as a High-Sensitivity Cysteine Nanoprobe for Monitoring Ischemic Stroke.
basic_science · Level V
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- Record sourced from PubMed, PMID 38847448.
- Also identified by DOI 10.1021/acsnano.4c04211.
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Abstract
Sulfur-substituted dicyanomethylene-4<i>H</i>-chromene (DCM) derivatives based on the intramolecular charge transfer (ICT) mechanism were designed as near-infrared (NIR) fluorescent dyes. Using the Knoevenagel condensation method, the S-DCM-OH<sub>(835)</sub> fluorescence dye was synthesized, which had an emission wavelength exceeding 800 nm and 220 nm of a Stokes shift. Compared to commercial ICG, S-DCM-OH<sub>(835)</sub> was not only synchronized in emission wavelength but also far superior in Stokes shifts. These advantages made the design of S-DCM-NIR<sub>(835)</sub> based on this dye potentially valuable for biological applications. Based on this chemical structure, a fluorescent S-DCM-NIR<sub>(835)</sub> nanoprobe with a mean diameter of 17.69 nm was fabricated as the NIR imaging nanoprobe. Results showed that the nanoprobe maintained the high-specificity identification of cysteine (Cys) via the Michael addition reaction, with the detection limitation of 0.11 μM endogenous Cys. More importantly, in an ischemic stroke mouse model, the S-DCM-NIR<sub>(835)</sub> nanoprobe could monitor the Cys concentration change at stroke lesion due to the disruption of Cys metabolism under the ischemic stroke condition. Such a S-DCM-NIR<sub>(835)</sub> nanoprobe could not only differentiate the severity of the ischemic stroke using response time but also quantify the concentration of Cys in real-time <i>in vivo</i>.
Medical subject headings
- Fluorescent Dyes
- Cysteine
- Ischemic Stroke
- Infrared Rays