Covalent phytobilin adducts of GUN4 implicate a photoprotective mechanism in chlorophyll biosynthesis

Y Yan Wang C Chunhui Hou (National Key Laboratory of Agricultural Microbiology, College of Bio-X, Hubei Hongshan Laboratory, Huazhong Agricultural University) N Nathan C. Rockwell (Department of Molecular and Cellular Biology, University of California) P Pawel Brzezowski (Department of Stress Biology, The Franciszek Górski Institute of Plant Physiology, Polish Academy of Sciences) W Weiqing Zhang X Xiahe Huang (Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, University of Chinese Academy of Sciences) Q Qiuling Fan (National Key Laboratory of Agricultural Microbiology, College of Bio-X, Hubei Hongshan Laboratory, Huazhong Agricultural University) Y Yingchun Wang B Bernhard Grimm (Institute of Biology/Plant Physiology, Humboldt-Universität zu Berlin) J J. Clark Lagarias (Department of Molecular and Cellular Biology, University of California) D Deqiang Duanmu (National Key Laboratory of Agricultural Microbiology, Hubei Hongshan Laboratory, College of Life Science and Technology, Huazhong Agricultural University)

Abstract

In the green alga Chlamydomonas reinhardtii, loss of chlorophyll synthesis under light stress is associated with degradation of the porphyrin-binding H-subunit (CHLH1) of magnesium chelatase (MgCh). This degradation is exacerbated by the absence of GENOMES UNCOUPLED 4 protein (GUN4) or its phycocyanobilin (PCB) ligand. PCB is synthesized from heme via the action of heme oxygenase HMOX1 followed by a ferredoxin-dependent bilin reductase (FDBR), a ubiquitous enzyme family in oxyphototrophs. We show that C. reinhardtii cells lacking GUN4 and/or HMOX1 accumulate the MgCh substrate protoporphyrin IX (PPIX), a potent generator of singlet oxygen ( 1 O 2 ). CHLH1 is unstable in gun4 or hmox1 mutants, phenotypes that can be rescued by deletion of known cytosolic 1 O 2 response proteins SAK1 or SOR1. GUN4 Trp residues are oxidized in the presence of PPIX and near-ultraviolet light (nUV), and spectroscopic changes in GUN4 seen in the presence of PCB are ablated by PPIX and nUV. The combination of PPIX, PCB, and nUV result in formation of covalent GUN4–bilin adducts. Such adducts are formed both in vivo and in vitro and are also formed in GUN4 proteins from cyanobacteria and plants. In GUN4 variants, loss of adduct formation correlates with Chlamydomonas growth defects under light stress. We propose that phytobilin adduct formation provides a mechanism for detoxifying 1 O 2 and sustaining chlorophyll synthesis in the presence of light and oxygen, thereby explaining the ubiquity of FDBRs in eukaryotic algae.

Article Details

Volume / Issue Vol. 123, Issue 28
Published July 14, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

Y

Yan Wang

C

Chunhui Hou

National Key Laboratory of Agricultural Microbiology, College of Bio-X, Hubei Hongshan Laboratory, Huazhong Agricultural University

N

Nathan C. Rockwell

Department of Molecular and Cellular Biology, University of California

P

Pawel Brzezowski

Department of Stress Biology, The Franciszek Górski Institute of Plant Physiology, Polish Academy of Sciences

W

Weiqing Zhang

X

Xiahe Huang

Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, University of Chinese Academy of Sciences

Q

Qiuling Fan

National Key Laboratory of Agricultural Microbiology, College of Bio-X, Hubei Hongshan Laboratory, Huazhong Agricultural University

Y

Yingchun Wang

B

Bernhard Grimm

Institute of Biology/Plant Physiology, Humboldt-Universität zu Berlin

J

J. Clark Lagarias

Department of Molecular and Cellular Biology, University of California

D

Deqiang Duanmu

National Key Laboratory of Agricultural Microbiology, Hubei Hongshan Laboratory, College of Life Science and Technology, Huazhong Agricultural University