Periplasmic biomineralization for semi-artificial photosynthesis

Author:

Lin Yiliang1ORCID,Shi Jiuyun2ORCID,Feng Wei3ORCID,Yue Jiping2,Luo Yanqi4ORCID,Chen Si4ORCID,Yang Bin5ORCID,Jiang Yuanwen2ORCID,Hu Huicheng2,Zhou Chenkun12ORCID,Shi Fengyuan6ORCID,Prominski Aleksander2ORCID,Talapin Dmitri V.127ORCID,Xiong Wei5ORCID,Gao Xiang13ORCID,Tian Bozhi128ORCID

Affiliation:

1. The James Franck Institute, University of Chicago, Chicago, IL 60637, USA.

2. Department of Chemistry, University of Chicago, Chicago, IL 60637, USA.

3. Center for Materials Synthetic Biology, CAS Key Laboratory of Quantitative Engineering Biology, Shenzhen Institute of Synthetic Biology, and Shenzhen Institute of Advanced Technology, Chinese Academy of Science, Shenzhen 518000, China.

4. Advanced Photon Source, Argonne National Laboratory, Lemont, IL 60439, USA.

5. Bioscience Center, National Renewable Energy Laboratory, Golden, CO 80401, USA.

6. Electron Microscopy Core, University of Illinois Chicago, Chicago, IL 60607, USA.

7. Pritzker School of Molecular Engineering, University of Chicago, Chicago, IL 60637, USA.

8. Institute for Biophysical Dynamics, University of Chicago, Chicago, IL 60637, USA.

Abstract

Semiconductor-based biointerfaces are typically established either on the surface of the plasma membrane or within the cytoplasm. In Gram-negative bacteria, the periplasmic space, characterized by its confinement and the presence of numerous enzymes and peptidoglycans, offers additional opportunities for biomineralization, allowing for nongenetic modulation interfaces. We demonstrate semiconductor nanocluster precipitation containing single- and multiple-metal elements within the periplasm, as observed through various electron- and x-ray-based imaging techniques. The periplasmic semiconductors are metastable and display defect-dominant fluorescent properties. Unexpectedly, the defect-rich (i.e., the low-grade) semiconductor nanoclusters produced in situ can still increase adenosine triphosphate levels and malate production when coupled with photosensitization. We expand the sustainability levels of the biohybrid system to include reducing heavy metals at the primary level, building living bioreactors at the secondary level, and creating semi-artificial photosynthesis at the tertiary level. The biomineralization-enabled periplasmic biohybrids have the potential to serve as defect-tolerant platforms for diverse sustainable applications.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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