Direct bioelectrocatalysis at the interfaces by genetically engineered dehydrogenase

Author:

Yucesoy Deniz Tanil1,Karaca Banu Taktak23,Cetinel Sibel4,Caliskan Huseyin Burak5,Adali Esref6,Gul-Karaguler Nevin7,Tamerler Candan89

Affiliation:

1. PhD Student, Materials Science and Engineering, University of Washington, Seattle, WA, USA

2. Visiting PhD Student, Bioengineering Research Center, University of Kansas, Lawrence, KS, USA

3. PhD Student, Molecular Biology and Genetics, Istanbul Technical University, Istanbul, Turkey

4. Postdoctoral Researcher, Molecular Biology and Genetics, Istanbul Technical University, Istanbul, Turkey

5. MSc Student, Molecular Biology and Genetics, Istanbul Technical University, Istanbul, Turkey

6. Professor, Faculty of Computer and Informatics, Istanbul Technical University, Istanbul, Turkey

7. Professor, Molecular Biology and Genetics, Istanbul Technical University, Istanbul, Turkey

8. Professor, Department of Mechanical Engineering, University of Kansas, Lawrence, KS, USA

9. Bioengineering Research Center, University of Kansas, Lawrence, KS, USA

Abstract

There is an emerging interest in developing bio-functionalisation routes serving as platforms for assembling diverse enzymes onto material surfaces. Specifically, the fabrication of next-generation, laboratory-on-a-chip-based sensing and energy-harvesting systems requires controlled orientation and organisation of the proteins at the inorganic interfaces. Herein, the authors take the initial steps towards designing multifunctional, enzyme-based platforms by genetically integrating the engineered material-selective peptide tags for tethering redox enzymes onto electrode surfaces. The authors engineered a fusion protein that genetically conjugates gold-binding peptide to formate dehydrogenase derived from Candida methylica. The expressed proteins were tested for both enzyme activity and self-directed gold-surface functionalisation ability. Their findings demonstrate the successful self-immobilisation of the engineered enzyme onto different gold electrodes while retaining the catalytic activity. Building on the functionalisation by the peptides, a fusion enzyme-integrated circuit-based biosensor system was designed. The catalytic conversion of the formate by the engineered dehydrogenase was successfully monitored on the electrode surface at subsequent intervals. The engineered peptide-mediated self-integrated electrode systems can be extended to develop a wide range of biosensing and energy-harvesting platforms using different combinations of materials and biomolecules. This paper contains supporting information that will be made available online once the issue is published.

Publisher

Thomas Telford Ltd.

Subject

General Engineering,Biomaterials

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