| Literature DB >> 34544852 |
Yasutoshi Jimbo1, Daisuke Sasaki2, Takashi Ohya3, Sunghoon Lee1, Wonryung Lee1, Faezeh Arab Hassani1, Tomoyuki Yokota1, Katsuhisa Matsuura2, Shinjiro Umezu3, Tatsuya Shimizu2, Takao Someya4.
Abstract
Electrode arrays are widely used for multipoint recording of electrophysiological activities, and organic electronics have been utilized to achieve both high performance and biocompatibility. However, extracellular electrode arrays record the field potential instead of the membrane potential itself, resulting in the loss of information and signal amplitude. Although much effort has been dedicated to developing intracellular access methods, their three-dimensional structures and advanced protocols prohibited implementation with organic electronics. Here, we show an organic electrochemical transistor (OECT) matrix for the intracellular action potential recording. The driving voltage of sensor matrix simultaneously causes electroporation so that intracellular action potentials are recorded with simple equipment. The amplitude of the recorded peaks was larger than that of an extracellular field potential recording, and it was further enhanced by tuning the driving voltage and geometry of OECTs. The capability of miniaturization and multiplexed recording was demonstrated through a 4 × 4 action potential mapping using a matrix of 5- × 5-μm2 OECTs. Those features are realized using a mild fabrication process and a simple circuit without limiting the potential applications of functional organic electronics.Entities:
Keywords: action potential mapping; biomonitoring interface; intracellular recording; organic electrochemical transistor; organic electronics
Mesh:
Year: 2021 PMID: 34544852 PMCID: PMC8488610 DOI: 10.1073/pnas.2022300118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205