A ratiometric electrochemical sensor for detecting lead in fish based on the synergy of semi-complementary aptamer pairs and Ag nanowires@zeolitic imidazolate framework-8.
Kuiguo HanLiang ChenWen ZhangYanqun TongJiyong ShiXiaoyu SuXiaobo ZouPublished in: Analytical methods : advancing methods and applications (2023)
This work describes the synergistic application of semi-complementary aptamer pairs and signals on-off ratio strategies on glassy carbon electrodes (GCE) for detecting lead ions (Pb 2+ ) in fish. Gold nanoparticles (AuPNs) as the electrode substrate can provide added binding sites for the aptamers and improve the conductivity of the electrodes. Pb 2+ aptamers containing ferrocene (Fc) molecules act as molecular recognizers in the sensing system. In the presence of target ions, Fc signals are affected by conformational changes of the aptamer. The "Ag nanowires@zeolitic imidazolate framework-8 with methylene blue (AgNWs@ZIF-8/MB)" can be semi-complementary to the Pb 2+ aptamer after binding to single-stranded DNA (S 1 ). However, S 1 /AgNWs@ZIF-8/MB self-assembled with Pb 2+ aptamer (Apt) by hybridization incubation was quickly replaced by Pb 2+ competitively, resulting in the loss of methylene blue (MB) signaling molecules. Hence, the internal reference signal (MB) and conformation change signal (Fc) comprise the ratio sensing system well. Morphology, spectroscopy, and electrochemistry methods have validated the modification and sensing behaviors. The used Apt has made considerable progress in analytical performance. In interference studies and stability checks, the ratio measurement signal I Fc / I MB is a more reliable signal than the single signal readout. Following a log-linear relationship, this sensor provides a wide linear range. Furthermore, the proposed sensor can be used to determine Pb 2+ in fish samples, and the results agree with those obtained using ICP-MS and recovery tests.
Keyphrases
- gold nanoparticles
- reduced graphene oxide
- heavy metals
- aqueous solution
- sensitive detection
- quantum dots
- single molecule
- label free
- nucleic acid
- magnetic nanoparticles
- mass spectrometry
- risk assessment
- multiple sclerosis
- molecular dynamics simulations
- room temperature
- high resolution
- solid state
- liquid chromatography
- carbon nanotubes
- highly efficient
- fluorescent probe
- living cells