4.7 Article

Self-powered molecule release systems activated with chemical signals processed through reconfigurable Implication or Inhibition Boolean logic gates

Journal

BIOELECTROCHEMISTRY
Volume 138, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.bioelechem.2020.107735

Keywords

Logic gate; Modified electrode; Biofuel cell; Molecule release; Signal transduction

Funding

  1. Human Frontier Science Program [RGP0002/2018]
  2. Australian Research Council [DP160100973, DP150100936]
  3. NHMRC [APP1113262]
  4. Australian Research Council Center of excellence in Synthetic Biology [CE200100029]
  5. QUT-CSIRO Synthetic Biology Alliance

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The study used switchable glucose dehydrogenase to realize the IMPLY and INHIB Boolean logic gates in biofuel cells, enabling control over different input signals and driving molecule release functions.
The Implication (IMPLY) and Inhibition (INHIB) Boolean logic gates were realized using switchable chimeric pyrroloquinoline quinone-dependent glucose dehydrogenase (PQQ-GDH-Clamp) containing a fused affinity clamp unit recognizing a signal-peptide. The second component of the logic gate was the wild-type PQQ-glucose dehydrogenase working cooperatively with the PQQ-GDH-Clamp enzyme. The IMPLY and INHIB gates were realized using the same enzyme composition activated with differently defined input signals, thus representing reconfigurable logic systems. The logic gates were first tested while operating in a solution with optical analysis of the output signals. Then, the enzymes were immobilized on a buckypaper electrode for electrochemical transduction of the output signals. The switchable modified electrodes mimicking the IMPLY or INHIB logic gates were integrated with an oxygen-reducing electrode modified with bilirubin oxidase to operate as a biofuel cell activated/inhibited by various input signal combinations processed either by IMPLY or INHIB logic gates. The switchable biofuel cell was used as a self-powered device triggering molecule release function controlled by the logically processed molecule signals. (c) 2020 Elsevier B.V. All rights reserved.

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