4.8 Article

Nitrogen-doped multiple graphene aerogel/gold nanostar as the electrochemical sensing platform for ultrasensitive detection of circulating free DNA in human serum

期刊

BIOSENSORS & BIOELECTRONICS
卷 79, 期 -, 页码 457-466

出版社

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2015.12.092

关键词

Nitrogen doping; Multiple graphene aerogel; Gold nanostar; Electrochemical sensor; DNA

资金

  1. National Natural Science Foundation of China [21576115, 21176101]
  2. Fundamental Research Funds for the Central Universities [JUSRP51314B]
  3. MOE SAFEA [B13025]
  4. country 12th Five-Year Plan [2012BAK08B01]

向作者/读者索取更多资源

Graphene aerogel has attracted increasing attention due to its large specific surface area, high-conductivity and electronic interaction. The paper reported a facile synthesis of nitrogen-doped multiple graphene aerogel/gold nanostar (termed as N-doped MGA/GNS) and its use as the electrochemical sensing platform for detection of double stranded (dsDNA). On the one hand, the N-doped MGA offers a much better electrochemical performance compared with classical graphene aerogel. Interestingly, the performance can be enhanced by only increasing the cycle number of graphene oxide gelation. On the other hand, the hybridization with GNS further enhances the electrocatalytic activity towards Fe(CN)(6)(3-/4-). In addition, the N-doped MGA/GNS provides a well-defined three-dimensional architecture. The unique structure make it is easy to combine with dsDNA to form the electroactive bioconjugate. The integration not only triggers an ultrafast DNA electron and charge transfer, but also realizes a significant synergy between N-doped MGA, GNS and dsDNA. As a result, the electrochemical sensor based on the hybrid exhibits highly sensitive differential pulse voltammetric response (DPV) towards dsDNA. The DPV signal linearly increases with the increase of dsDNA concentration in the range from 1.0 x 10(-21) g ml(-1) to 1.0 x 10(-16) g ml(-1) with the detection limit of 3.9 x 10(-22) g ml(-1) (S/N=3). The sensitivity is much more than that of all reported DNA sensors. The analytical method was successfully applied in the electrochemical detection of circulating free DNA in human serum. The study also opens a window on the electrical properties of multiple graphene aerogel and DNA as well their hybrids to meet the needs of further applications as special nanoelectronics in molecule diagnosis, bioanalysis and catalysis. (C) 2015 Elsevier B.V. All rights reserved.

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