TY - JOUR
T1 - Development of a multilayered polymeric DNA biosensor using radio frequency technology with gold and magnetic nanoparticles
AU - Yang, Cheng Hao
AU - Kuo, Long Sheng
AU - Chen, Ping Hei
AU - Yang, Chii Rong
AU - Tsai, Zuo Min
N1 - Funding Information:
The authors wish to thank the National Taiwan University NEMS Center and National Normal Taiwan University MOEMS Laboratory for providing experimental facilities. We deeply appreciate the financial support offered by the National Science Council (NSC) of Taiwan, Republic of China , under contract NSC 99-2221-E-002-081-MY3.
PY - 2012/1/15
Y1 - 2012/1/15
N2 - This study utilized the radio frequency (RF) technology to develop a multilayered polymeric DNA sensor with the help of gold and magnetic nanoparticles. The flexible polymeric materials, poly (p-xylylene) (Parylene) and polyethylene naphtholate (PEN), were used as substrates to replace the conventional rigid substrates such as glass and silicon wafers. The multilayered polymeric RF biosensor, including the two polymer layers and two copper transmission structure layers, was developed to reduce the total sensor size and further enhance the sensitivity of the biochip in the RF DNA detection. Thioglycolic acid (TGA) was used on the surface of the proposed biochip to form a thiolate-modified sensing surface for DNA hybridization. Gold nanoparticles (AuNPs) and magnetic nanoparticles (MNPs) were used to immobilize on the surface of the biosensor to enhance overall detection sensitivity. In addition to gold nanoparticles, the magnetic nanoparticles has been demonstrated the applicability for RF DNA detection. The performance of the proposed biosensor was evaluated by the shift of the center frequency of the RF biosensor because the electromagnetic characteristic of the biosensors can be altered by the immobilized multilayer nanoparticles on the biosensor. The experimental results show that the detection limit of the DNA concentration can reach as low as 10. pM, and the largest shift of the center frequency with triple-layer AuNPs and MNPs can approach 0.9 and 0.7. GHz, respectively. Such the achievement implies that the developed biosensor can offer an alternative inexpensive, disposable, and highly sensitive option for application in biomedicine diagnostic systems because the price and size of each biochip can be effectively reduced by using fully polymeric materials and multilayer-detecting structures.
AB - This study utilized the radio frequency (RF) technology to develop a multilayered polymeric DNA sensor with the help of gold and magnetic nanoparticles. The flexible polymeric materials, poly (p-xylylene) (Parylene) and polyethylene naphtholate (PEN), were used as substrates to replace the conventional rigid substrates such as glass and silicon wafers. The multilayered polymeric RF biosensor, including the two polymer layers and two copper transmission structure layers, was developed to reduce the total sensor size and further enhance the sensitivity of the biochip in the RF DNA detection. Thioglycolic acid (TGA) was used on the surface of the proposed biochip to form a thiolate-modified sensing surface for DNA hybridization. Gold nanoparticles (AuNPs) and magnetic nanoparticles (MNPs) were used to immobilize on the surface of the biosensor to enhance overall detection sensitivity. In addition to gold nanoparticles, the magnetic nanoparticles has been demonstrated the applicability for RF DNA detection. The performance of the proposed biosensor was evaluated by the shift of the center frequency of the RF biosensor because the electromagnetic characteristic of the biosensors can be altered by the immobilized multilayer nanoparticles on the biosensor. The experimental results show that the detection limit of the DNA concentration can reach as low as 10. pM, and the largest shift of the center frequency with triple-layer AuNPs and MNPs can approach 0.9 and 0.7. GHz, respectively. Such the achievement implies that the developed biosensor can offer an alternative inexpensive, disposable, and highly sensitive option for application in biomedicine diagnostic systems because the price and size of each biochip can be effectively reduced by using fully polymeric materials and multilayer-detecting structures.
KW - DNA detection
KW - Multilayered biosensor
KW - Polymeric biosensor
KW - Radio-frequency
UR - https://www.scopus.com/pages/publications/84455205603
UR - https://www.scopus.com/pages/publications/84455205603#tab=citedBy
U2 - 10.1016/j.bios.2011.10.044
DO - 10.1016/j.bios.2011.10.044
M3 - Article
C2 - 22093770
AN - SCOPUS:84455205603
SN - 0956-5663
VL - 31
SP - 349
EP - 356
JO - Biosensors and Bioelectronics
JF - Biosensors and Bioelectronics
IS - 1
ER -