Ascorbate Peroxidase 2 (APX2) of Chlamydomonas Binds Copper and Modulates the Copper Insertion into Plastocyanin

Author:

Caccamo Anna1234ORCID,Vega de Luna Félix1ORCID,Wahni Khadija234ORCID,Volkov Alexander N.25ORCID,Przybyla-Toscano Jonathan1ORCID,Amelii Antonello1ORCID,Kriznik Alexandre6ORCID,Rouhier Nicolas7ORCID,Messens Joris234ORCID,Remacle Claire1ORCID

Affiliation:

1. Genetics and Physiology of Microalgae, InBios/Phytosystems Research Unit, University of Liège, 4000 Liège, Belgium

2. VIB-VUB Center for Structural Biology, 1050 Brussels, Belgium

3. Brussels Center for Redox Biology, 1050 Brussels, Belgium

4. Structural Biology Brussels, Vrije Universiteit Brussel, 1050 Brussels, Belgium

5. Jean Jeener NMR Centre, Vrije Universiteit Brussel (VUB), 1050 Brussels, Belgium

6. CNRS, IMoPA and IBSLor, Université de Lorraine, F-54000 Nancy, France

7. INRAE, IAM, Université de Lorraine, F-54000 Nancy, France

Abstract

Recent phylogenetic studies have unveiled a novel class of ascorbate peroxidases called “ascorbate peroxidase-related” (APX-R). These enzymes, found in green photosynthetic eukaryotes, lack the amino acids necessary for ascorbate binding. This study focuses on the sole APX-R from Chlamydomonas reinhardtii referred to as ascorbate peroxidase 2 (APX2). We used immunoblotting to locate APX2 within the chloroplasts and in silico analysis to identify key structural motifs, such as the twin-arginine transport (TAT) motif for lumen translocation and the metal-binding MxxM motif. We also successfully expressed recombinant APX2 in Escherichia coli. Our in vitro results showed that the peroxidase activity of APX2 was detected with guaiacol but not with ascorbate as an electron donor. Furthermore, APX2 can bind both copper and heme, as evidenced by spectroscopic, and fluorescence experiments. These findings suggest a potential interaction between APX2 and plastocyanin, the primary copper-containing enzyme within the thylakoid lumen of the chloroplasts. Predictions from structural models and evidence from 1H-NMR experiments suggest a potential interaction between APX2 and plastocyanin, emphasizing the influence of APX2 on the copper-binding abilities of plastocyanin. In summary, our results propose a significant role for APX2 as a regulator in copper transfer to plastocyanin. This study sheds light on the unique properties of APX-R enzymes and their potential contributions to the complex processes of photosynthesis in green algae.

Funder

Fonds de la Recherche Scientifique-the Research Foundation Flanders—Excellence of Science project

Publisher

MDPI AG

Subject

Cell Biology,Clinical Biochemistry,Molecular Biology,Biochemistry,Physiology

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