4.7 Article

Ultrafast synthesized monometallic nanohybrids as an efficient quencher and recognition antenna of upconversion nanoparticles for the detection of xanthine with enhanced sensitivity and selectivity

Journal

TALANTA
Volume 245, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.talanta.2022.123471

Keywords

Monometallic nanohybrids; Upconversion nanoparticles; Cascade signal amplification; Inner filter effects; Xanthine

Funding

  1. National Natural Science Foundation of China [51903258]
  2. Program of Innovative Talent (in Science and Technology) in University of Henan Province [21HASTIT007]
  3. Key Scientific and Technological Project of Henan Province [212102210034]
  4. Key Research Projects of Henan Higher Education Institutions [22A150057]
  5. Doctoral Scientific Research Foundation of Zhoukou Normal University [ZKNUC2020041]
  6. College Student Innovation and Entrepreneurship Training Program of Zhoukou Normal University [S202110478030]

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Upconversion nanoparticles (UCNPs) have great potential in bioanalytical applications due to their excellent optical properties. However, the efficiency and signal-to-background ratio (SBR) of fluorescence resonance energy transfer (FRET) based applications with UCNPs are hindered by the large number of emission center ions. In this study, a novel nanoprobe for the detection of Xanthine (XA) was developed based on inner filter effects (IFE) and cascade signal amplification strategy. The nanoprobe consisted of UCNP decorated with trypsin-chymotrypsin-stabilized gold nanoparticles-gold nanoclusters (Try-chy-AuNPs-AuNCs) monometallic nanohybrids, which showed efficient upconversion fluorescence quenching ability and improved the SBR and sensitivity of the probe.
Upconversion nanoparticles (UCNPs) have shown great promise in bioanalytical applications owing to their excellent optical properties. Generally, most analytical applications are based on the fluorescence resonance energy transfer (FRET) principle to quench the fluorescence of UCNPs. However, each UCNP contains thousands of emission center ions, and most of them exceed the FRET critical distance, which hinders FRET efficiency and leads to a low signal-to-background ratio (SBR). Herein, a novel nanoprobe for the detection of Xanthine (XA) based on inner filter effects (IFE) and cascade signal amplification strategy was constructed by decorating UCNP with trypsin-chymotrypsin-stabilized gold nanoparticles-gold nanoclusters (Try-chy-AuNPs-AuNCs) monometallic nanohybrids. The Try-chy-AuNPs-AuNCs prepared by ultrafast (3 min) and green synthesis method have efficient upconversion fluorescence quenching ability (the quenching efficiency up to 90.9%), which can effectively improve the SBR of the probe, so as to improve the sensitivity. In addition, the Try-chy-AuNPs-AuNCs have a unique spatial structure, which can effectively prevent the interaction between large-size biothiol (glutathione) and the probe, thus improving its selectivity. Besides, combined with the excellent optical performance of UCNPs and cascaded signal amplification strategy, the sensitivity of the probe can be further improved. Under the optimized conditions, the linear response range of the probe was obtained from 0.05 to 50 mu M, 0.06-80 mu M and with the low detection limit of 22.6 nM and 26.3 nM for H2O2 and XA, respectively. Meanwhile, the developed method has been further applied to the detection of XA in human serum with satisfactory results.

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