TY - JOUR
T1 - Highly sensitive electrochemiluminescent DNA biosensor based on hydrazide-modified graphene quantum dots and hemin/G-quadruplex DNAzyme
AU - Wang, Xiaoying
AU - Liu, Li
AU - Wang, Zhaoyin
AU - Dai, Zhihui
N1 - Publisher Copyright:
© 2016 Elsevier B.V.
PY - 2016/11/15
Y1 - 2016/11/15
N2 - Graphene quantum dots (GQDs), an alternative of conventional luminescent reagents, has been widely used in electrochemiluminescent (ECL) analysis because of its low cost, non-toxicity and ease of preparation. To further improve the ECL signal of GQDs, we herein succeeded in synthesizing hydrazide modified graphene quantum dots (HM-SGQDs). In comparison with GQDs, HM-SGQDs possessed abundant luminol like units, thus greatly enhancing the ECL intensity. On the other hand, luminol involved ECL system typically needed the participation of H2O2 as a coreactant, while hemin/G-quadruplex DNAzyme (hGQ) DNAzyme could efficiently catalyze the decomposition of H2O2. Accordingly, taking p53 gene as a model, a novel ECL DNA biosensor was developed based on HM-SGQDs and hGQ DNAzyme. The experimental results indicated target DNA can be quantified in a linear range from 100 fM to 100 nM with a detection limit of 66 fM (S/N = 3). Meanwhile, the discrimination of single-base mismatch was also achieved with the proposed analytical approach, suggesting broad potential applications of nucleic acid-related clinical diagnosis.
AB - Graphene quantum dots (GQDs), an alternative of conventional luminescent reagents, has been widely used in electrochemiluminescent (ECL) analysis because of its low cost, non-toxicity and ease of preparation. To further improve the ECL signal of GQDs, we herein succeeded in synthesizing hydrazide modified graphene quantum dots (HM-SGQDs). In comparison with GQDs, HM-SGQDs possessed abundant luminol like units, thus greatly enhancing the ECL intensity. On the other hand, luminol involved ECL system typically needed the participation of H2O2 as a coreactant, while hemin/G-quadruplex DNAzyme (hGQ) DNAzyme could efficiently catalyze the decomposition of H2O2. Accordingly, taking p53 gene as a model, a novel ECL DNA biosensor was developed based on HM-SGQDs and hGQ DNAzyme. The experimental results indicated target DNA can be quantified in a linear range from 100 fM to 100 nM with a detection limit of 66 fM (S/N = 3). Meanwhile, the discrimination of single-base mismatch was also achieved with the proposed analytical approach, suggesting broad potential applications of nucleic acid-related clinical diagnosis.
KW - Electrochemiluminescent biosensor
KW - Hemin/G-quadruplex DNAzyme
KW - Hydrazide modified graphene quantum dots
KW - p53 gene
UR - http://www.scopus.com/inward/record.url?scp=85002235426&partnerID=8YFLogxK
U2 - 10.1016/j.jelechem.2016.10.031
DO - 10.1016/j.jelechem.2016.10.031
M3 - 文章
AN - SCOPUS:85002235426
SN - 1572-6657
VL - 781
SP - 351
EP - 355
JO - Journal of Electroanalytical Chemistry
JF - Journal of Electroanalytical Chemistry
ER -