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Photosystem-II D1 protein mutants of Chlamydomonas reinhardtii in relation to metabolic rewiring and remodelling of H-bond network at Q(B) site

Sobolev V; Rea G; Mattoo AK; Margonelli A; Havurinne V; Bertalan I; Giardi MT; Tyystjarvi E; Lambreva MD; Edelman M; Samish I; Pastorelli S; Antonacci A; Johanningmeier U; Sobolev AP

Photosystem-II D1 protein mutants of Chlamydomonas reinhardtii in relation to metabolic rewiring and remodelling of H-bond network at Q(B) site

Sobolev V
Rea G
Mattoo AK
Margonelli A
Havurinne V
Bertalan I
Giardi MT
Tyystjarvi E
Lambreva MD
Edelman M
Samish I
Pastorelli S
Antonacci A
Johanningmeier U
Sobolev AP
Katso/Avaa
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NATURE PUBLISHING GROUP
doi:10.1038/s41598-018-33146-y
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Julkaisun pysyvä osoite on:
https://urn.fi/URN:NBN:fi-fe2021042719821
Tiivistelmä
Photosystem II (PSII) reaction centre D1 protein of oxygenic phototrophs is pivotal for sustaining photosynthesis. Also, it is targeted by herbicides and herbicide-resistant weeds harbour single amino acid substitutions in D1. Conservation of D1 primary structure is seminal in the photosynthetic performance in many diverse species. In this study, we analysed built-in and environmentally-induced (high temperature and high photon fluency-HT/HL) phenotypes of two D1 mutants of Chlamydomonas reinhardtii with Ala250Arg (A250R) and Ser264Lys (S264K) substitutions. Both mutations differentially affected efficiency of electron transport and oxygen production. In addition, targeted metabolomics revealed that the mutants undergo specific differences in primary and secondary metabolism, namely, amino acids, organic acids, pigments, NAD, xanthophylls and carotenes. Levels of lutein, beta-carotene and zeaxanthin were in sync with their corresponding gene transcripts in response to HT/HL stress treatment in the parental (IL) and A250R strains. D1 structure analysis indicated that, among other effects, remodelling of H-bond network at the Q(B) site might underpin the observed phenotypes. Thus, the D1 protein, in addition to being pivotal for efficient photosynthesis, may have a moonlighting role in rewiring of specific metabolic pathways, possibly involving retrograde signalling.
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