Photosynthetic biohybrid coculture for tandem and tunable CO 2 and N 2 fixation

Author:

Cestellos-Blanco Stefano12,Chan Rachel R.3,Shen Yue-xiao23,Kim Ji Min12,Tacken Tom A.34,Ledbetter Rhesa25,Yu Sunmoon16,Seefeldt Lance C.25,Yang Peidong12367

Affiliation:

1. Department of Materials Science and Engineering, University of California, Berkeley, CA 94720

2. Center for the Utilization of Biological Engineering in Space, University of California, Berkeley, CA 94720

3. Department of Chemistry, University of California, Berkeley, CA 94720

4. Department of Applied Physics, Eindhoven University of Technology, Eindhoven, 5600 MB, The Netherlands

5. Department of Chemistry and Biochemistry, Utah State University, Logan, UT 84322

6. Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720

7. Kavli Energy Nanosciences Institute, Berkeley, CA 94720

Abstract

Solar-driven bioelectrosynthesis represents a promising approach for converting abundant resources into value-added chemicals with renewable energy. Microorganisms powered by electrochemical reducing equivalents assimilate CO 2 , H 2 O, and N 2 building blocks. However, products from autotrophic whole-cell biocatalysts are limited. Furthermore, biocatalysts tasked with N 2 reduction are constrained by simultaneous energy-intensive autotrophy. To overcome these challenges, we designed a biohybrid coculture for tandem and tunable CO 2 and N 2 fixation to value-added products, allowing the different species to distribute bioconversion steps and reduce the individual metabolic burden. This consortium involves acetogen Sporomusa ovata , which reduces CO 2 to acetate, and diazotrophic Rhodopseudomonas palustris , which uses the acetate both to fuel N 2 fixation and for the generation of a biopolyester. We demonstrate that the coculture platform provides a robust ecosystem for continuous CO 2 and N 2 fixation, and its outputs are directed by substrate gas composition. Moreover, we show the ability to support the coculture on a high–surface area silicon nanowire cathodic platform. The biohybrid coculture achieved peak faradaic efficiencies of 100, 19.1, and 6.3% for acetate, nitrogen in biomass, and ammonia, respectively, while maintaining product tunability. Finally, we established full solar to chemical conversion driven by a photovoltaic device, resulting in solar to chemical efficiencies of 1.78, 0.51, and 0.08% for acetate, nitrogenous biomass, and ammonia, correspondingly. Ultimately, our work demonstrates the ability to employ and electrochemically manipulate bacterial communities on demand to expand the suite of CO 2 and N 2 bioelectrosynthesis products.

Funder

National Aeronautics and Space Administration

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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