Structural basis and evolution of the photosystem I–light-harvesting supercomplex of cryptophyte algae

Author:

Zhao Long-Sheng123ORCID,Wang Peng23ORCID,Li Kang3ORCID,Zhang Quan-Bao1ORCID,He Fei-Yu1ORCID,Li Chun-Yang23ORCID,Su Hai-Nan13ORCID,Chen Xiu-Lan13ORCID,Liu Lu-Ning24ORCID,Zhang Yu-Zhong235ORCID

Affiliation:

1. State Key Laboratory of Microbial Technology, Shandong University , Qingdao 266237 , China

2. College of Marine Life Sciences & Frontiers Science Center for Deep Ocean Multispheres and Earth System, Ocean University of China , Qingdao 266003 , China

3. Laboratory for Marine Biology and Biotechnology, Laoshan Laboratory , Qingdao 266237 , China

4. Institute of Systems, Molecular and Integrative Biology, University of Liverpool , Liverpool L69 7ZB , UK

5. State Key Laboratory of Microbial Technology, Marine Biotechnology Research Center, Shandong University , Qingdao 266237 , China

Abstract

Abstract Cryptophyte plastids originated from a red algal ancestor through secondary endosymbiosis. Cryptophyte photosystem I (PSI) associates with transmembrane alloxanthin-chlorophyll a/c proteins (ACPIs) as light-harvesting complexes (LHCs). Here, we report the structure of the photosynthetic PSI–ACPI supercomplex from the cryptophyte Chroomonas placoidea at 2.7-Å resolution obtained by crygenic electron microscopy. Cryptophyte PSI–ACPI represents a unique PSI–LHCI intermediate in the evolution from red algal to diatom PSI–LHCI. The PSI–ACPI supercomplex is composed of a monomeric PSI core containing 14 subunits, 12 of which originated in red algae, 1 diatom PsaR homolog, and an additional peptide. The PSI core is surrounded by 14 ACPI subunits that form 2 antenna layers: an inner layer with 11 ACPIs surrounding the PSI core and an outer layer containing 3 ACPIs. A pigment-binding subunit that is not present in any other previously characterized PSI–LHCI complexes, ACPI-S, mediates the association and energy transfer between the outer and inner ACPIs. The extensive pigment network of PSI–ACPI ensures efficient light harvesting, energy transfer, and dissipation. Overall, the PSI–LHCI structure identified in this study provides a framework for delineating the mechanisms of energy transfer in cryptophyte PSI–LHCI and for understanding the evolution of photosynthesis in the red lineage, which occurred via secondary endosymbiosis.

Funder

National Key R&D Program of China

National Natural Science Foundation of China

Major Scientific and Technological Innovation Project (MSTIP) of Shandong Province

Program of Shandong for Taishan Scholars

Natural Science Foundation of Shandong Province, China

Postdoctoral Science Foundation Funded Project of China

Royal Society

Biotechnology and Biological Sciences Research Council

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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