Author
Listed:
- Donggeun Lee
(Korea Institute of Science and Technology
Yonsei University)
- Woo Hyuk Jung
(Korea University)
- Suho Lee
(Korea Advanced Institute of Science and Technology (KAIST))
- Eui-Sang Yu
(Korea Institute of Science and Technology)
- Taikjin Lee
(Korea Institute of Science and Technology)
- Jae Hun Kim
(Korea Institute of Science and Technology)
- Hyun Seok Song
(Korea Institute of Science and Technology)
- Kwan Hyi Lee
(Korea Institute of Science and Technology
Korea University)
- Seok Lee
(Korea Institute of Science and Technology)
- Sang-Kook Han
(Yonsei University)
- Myung Chul Choi
(Korea Advanced Institute of Science and Technology (KAIST))
- Dong June Ahn
(Korea University
Korea University)
- Yong-Sang Ryu
(Korea Institute of Science and Technology
Korea University)
- Chulki Kim
(Korea Institute of Science and Technology)
Abstract
Despite technological advances in biomolecule detections, evaluation of molecular interactions via potentiometric devices under ion-enriched solutions has remained a long-standing problem. To avoid severe performance degradation of bioelectronics by ionic screening effects, we cover probe surfaces of field effect transistors with a single film of the supported lipid bilayer, and realize respectable potentiometric signals from receptor–ligand bindings irrespective of ionic strength of bulky solutions by placing an ion-free water layer underneath the supported lipid bilayer. High-energy X-ray reflectometry together with the circuit analysis and molecular dynamics simulation discovered biochemical findings that effective electrical signals dominantly originated from the sub-nanoscale conformational change of lipids in the course of receptor–ligand bindings. Beyond thorough analysis on the underlying mechanism at the molecular level, the proposed supported lipid bilayer-field effect transistor platform ensures the world-record level of sensitivity in molecular detection with excellent reproducibility regardless of molecular charges and environmental ionic conditions.
Suggested Citation
Donggeun Lee & Woo Hyuk Jung & Suho Lee & Eui-Sang Yu & Taikjin Lee & Jae Hun Kim & Hyun Seok Song & Kwan Hyi Lee & Seok Lee & Sang-Kook Han & Myung Chul Choi & Dong June Ahn & Yong-Sang Ryu & Chulki , 2021.
"Ionic contrast across a lipid membrane for Debye length extension: towards an ultimate bioelectronic transducer,"
Nature Communications, Nature, vol. 12(1), pages 1-9, December.
Handle:
RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-24122-8
DOI: 10.1038/s41467-021-24122-8
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