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An RNA aptamer photoelectrochemical biosensor based on the exciton energy transfer constructed for theophylline detection.
Chen, Jiexia; Lu, Yilin; Zhu, Gang; Zhang, Chuanqi; Liu, Zhuoer; Feng, Dexiang; Wei, Yan; Li, Lihua.
Affiliation
  • Chen J; School of Pharmacy, Wannan Medical College, Wuhu, 241002, China; Anhui Provincial Engineering Laboratory for Screening and Re-evaluation of Active Compounds of Herbal Medicines in Southern, Wuhu, 241002, China.
  • Lu Y; School of Pharmacy, Wannan Medical College, Wuhu, 241002, China.
  • Zhu G; School of Pharmacy, Wannan Medical College, Wuhu, 241002, China.
  • Zhang C; School of Pharmacy, Wannan Medical College, Wuhu, 241002, China.
  • Liu Z; School of Pharmacy, Wannan Medical College, Wuhu, 241002, China.
  • Feng D; School of Pharmacy, Wannan Medical College, Wuhu, 241002, China.
  • Wei Y; School of Pharmacy, Wannan Medical College, Wuhu, 241002, China. Electronic address: yanwei@wnmc.edu.cn.
  • Li L; School of Pharmacy, Wannan Medical College, Wuhu, 241002, China. Electronic address: llh05530226@126.com.
Anal Biochem ; 696: 115658, 2024 Sep 05.
Article in En | MEDLINE | ID: mdl-39244003
ABSTRACT
A novel photoelectrochemical (PEC) biosensor was developed incorporating a specifically designed RNA aptamer for the detection of theophylline (TP). This involved utilizing two nucleotide base aptamers with tailored sequences designed to target TP. The 3' end of a single-stranded RNA sequence (5'-GGAUACCA-(CH2)6-SH-3') and the 5' end of a complementary stranded RNA sequence (5'-HS-(CH2)6-CCUUGGAAGCC-3') were linked to gold nanoparticles (AuNPs) and CdS quantum dots (QDs), respectively. These two single-stranded RNAs (ssRNA) formed a double-stranded RNA (dsRNA) capable of recognizing TP. This major structural change altered the spacing between QDs and NPs, which signaled the presence and concentration of TP. TP was photoelectrochemical catalytic oxidation by the hole of CdS QDs under illumination, then anode photocurrent was generated. Due to the increase in surface impedance and the effect of exciton energy transfer (EET) between QDs and AuNPs, the photocurrent would undergo varying degrees of change. TP was detected by changes in photocurrent. PEC detection of TP was achieved in the range of 0.1 µM-200 µM. The detection limit was 0.033 µM. The method exhibited commendable reproducibility and remarkable selectivity. The biosensor was used to measure TP content in tea, beverages and blood samples, resulting in satisfactory recovery rates.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Anal Biochem / Anal. biochem / Analytical biochemistry Year: 2024 Type: Article Affiliation country: China

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Anal Biochem / Anal. biochem / Analytical biochemistry Year: 2024 Type: Article Affiliation country: China