Title :
DNA-programmed integrated protein-nanoelectronic transducer array
Author :
Jin Ho Kim ; Withey, Gary ; Xu, Jimmy
Author_Institution :
Div. of Eng., Brown Univ., Providence, RI, USA
Abstract :
By incorporating DNA as addressable linkers, we can direct and coordinate the simultaneous, parallel self-assembling and binding of multiple different redox proteins to designated nanoelectrodes on an integrated chip. As a result, we have formed a nanoelectronic-protein transducer array which is capable of real-time, multiplexed detection of several analytes in parallel. The sequence-specificity of DNA hybridization provides the means of encoding spatial address instruction to the self-assembling process and enables the desired programmability, scalability, and renewability. Our results demonstrate the feasibility of a new paradigm of biosensing: detection of not only the presence of target substances but also the real-time activities of multiple biomolecules. In this system, the conjugated biomolecules and nanoelectronic components provide the active monitoring and mediating functions in real time, and can be integrated en masse into large arrays in a silicon-based integrated circuit.
Keywords :
DNA; bioMEMS; biosensors; integrated circuits; molecular biophysics; proteins; transducers; DNA hybridisation; DNA programmed transducer array; addressable DNA linkers; analyte multiplexed detection; biosensing; conjugated biomolecules; integrated chip nanoelectrodes; integrated transducer array; nanoelectronic components; protein binding; protein nanoelectronic transducer array; redox protein parallel self-assembling; silicon based integrated circuit; Biosensors; DNA; Encoding; Molecular biophysics; Monitoring; Proteins; Real time systems; Scalability; Self-assembly; Transducers;
Conference_Titel :
Sensors, 2009 IEEE
Conference_Location :
Christchurch
Print_ISBN :
978-1-4244-4548-6
Electronic_ISBN :
1930-0395
DOI :
10.1109/ICSENS.2009.5398177