4.6 Article

Resonance scattering spectral detection of trace ATP based on label-free aptamer reaction and nanogold catalysis

Journal

ANALYST
Volume 136, Issue 21, Pages 4514-4519

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c1an15542c

Keywords

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Funding

  1. National Natural Science Foundation of China [20865002, 20965002, 21075023, 21165005]
  2. Natural Science Foundation of Guangxi [0991021z]
  3. State Key Laboratory Cultivation Base for the Chemistry and Molecular Engineering of Medicinal Resources, Ministry of Science and Technology of China [CMEMR2011-10]

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Double-stranded DNA (dsDNA) cannot protect gold nanoparticles (AuNPs) in the presence of NaCl, and dsDNA interacted with adenosine triphosphate (ATP) to form stable G-quartet and a single-stranded DNA (DNA 2) that can protect AuNPs. The unprotected AuNPs were aggregated to AuNP aggregations (AuNPA) that exhibited a resonance scattering (RS) peak at 590 nm. The RS intensity at 590 nm decreased linearly when the ATP concentration increased in the range of 6.6-110 nM. The catalysis of AuNP-DNA 2 was stronger than that of the AuNPA on the glucose-Cu(II) particle reaction, and the product appeared as an RS peak at 620 nm. When the ATP concentration was increased, the AuNP-DNA 2 increased, and the RS intensity at 620 nm increased linearly. The increased RS intensity (Delta I-620 (nm)) was linear to ATP concentration in the range of 2.2-220 nM, with a regression equation of Delta I-620 (nm) 0.709C + 7.7, and a detection limit of 0.5 nM. Hereby, a new RS method of ATP detection was set up with high sensitivity and selectivity.

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