The structure of photosystem I from a high-light-tolerant cyanobacteria

Author:

Dobson Zachary12ORCID,Ahad Safa3,Vanlandingham Jackson12,Toporik Hila12,Vaughn Natalie12,Vaughn Michael12ORCID,Williams Dewight4,Reppert Michael3,Fromme Petra12,Mazor Yuval12ORCID

Affiliation:

1. School of Molecular Sciences, Arizona State University

2. BiodesignCenter for Applied Structural Discovery, Arizona State University

3. Department of Chemistry, Purdue University

4. John M. Cowley Center for High Resolution Electron Microscopy, Arizona State University

Abstract

Photosynthetic organisms have adapted to survive a myriad of extreme environments from the earth’s deserts to its poles, yet the proteins that carry out the light reactions of photosynthesis are highly conserved from the cyanobacteria to modern day crops. To investigate adaptations of the photosynthetic machinery in cyanobacteria to excessive light stress, we isolated a new strain of cyanobacteria, Cyanobacterium aponinum 0216, from the extreme light environment of the Sonoran Desert. Here we report the biochemical characterization and the 2.7 Å resolution structure of trimeric photosystem I from this high-light-tolerant cyanobacterium. The structure shows a new conformation of the PsaL C-terminus that supports trimer formation of cyanobacterial photosystem I. The spectroscopic analysis of this photosystem I revealed a decrease in far-red absorption, which is attributed to a decrease in the number of long- wavelength chlorophylls. Using these findings, we constructed two chimeric PSIs in Synechocystis sp. PCC 6803 demonstrating how unique structural features in photosynthetic complexes can change spectroscopic properties, allowing organisms to thrive under different environmental stresses.

Funder

National Institute of Food and Agriculture

Biodesign, Center of Applied Structural Discovery

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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