Expression of filaments of the Geobacter extracellular cytochrome OmcS in Shewanella oneidensis

Author:

Lin Tong12ORCID,Ding Wenqi1ORCID,Zhang Danni34ORCID,You Zixuan1ORCID,Yang Yun5ORCID,Li Feng1ORCID,Xu Dake34ORCID,Lovley Derek R.34ORCID,Song Hao1ORCID

Affiliation:

1. Frontiers Science Centre for Synthetic Biology (Ministry of Education), and Key Laboratory of Systems Bioengineering, School of Chemical Engineering and Technology Tianjin University Tianjin China

2. College of Life Science Langfang Normal University Langfang Hebei China

3. Shenyang National Laboratory for Materials Science Northeastern University Shenyang China

4. Electrobiomaterials Institute, Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education) Northeastern University Shenyang China

5. Beijing Advanced Innovation Centre for Biomedical Engineering, Key Laboratory for Biomechanics and Mechanobiology of Ministry of Education, School of Engineering Medicine Beihang University Beijing China

Abstract

AbstractThe physiological role of Geobacter sulfurreducens extracellular cytochrome filaments is a matter of debate and the development of proposed electronic device applications of cytochrome filaments awaits methods for large‐scale cytochrome nanowire production. Functional studies in G. sulfurreducens are stymied by the broad diversity of redox‐active proteins on the outer cell surface and the redundancy and plasticity of extracellular electron transport routes. G. sulfurreducens is a poor chassis for producing cytochrome nanowires for electronics because of its slow, low‐yield, anaerobic growth. Here we report that filaments of the G. sulfurreducens cytochrome OmcS can be heterologously expressed in Shewanella oneidensis. Multiple lines of evidence demonstrated that a strain of S. oneidensis, expressing the G. sulfurreducens OmcS gene on a plasmid, localized OmcS on the outer cell surface. Atomic force microscopy revealed filaments with the unique morphology of OmcS filaments emanating from cells. Electron transfer to OmcS appeared to require a functional outer‐membrane porin‐cytochrome conduit. The results suggest that S. oneidensis, which grows rapidly to high culture densities under aerobic conditions, may be suitable for the development of a chassis for producing cytochrome nanowires for electronics applications and may also be a good model microbe for elucidating cytochrome filament function in anaerobic extracellular electron transfer.

Publisher

Wiley

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