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Updated: Apr 27, 2026

Isolation and Characterization of Intact Phycobilisome in Cyanobacteria
Published on: November 10, 2021
Phycobilisome Mobility and Its Role in the Regulation of Light Harvesting in Red Algae
Radek Kaňa1, Eva Kotabová2, Martin Lukeš2
1Institute of Microbiology, Centre Algatech, Academy of Sciences of the Czech Republic, 379 81 Trebon, Czech Republic (R.K., E.K., M.L., O.P.);Faculty of Science, Institute of Chemistry and Biochemistry, University of South Bohemia, Branišovská 31, 370 05 Ceske Budejovice, Czech Republic (R.K., E.K., O.P.); Faculty of Fisheries and Protection of Waters, Center of Aquaculture and Biodiversity of Hydrocenoses, Institute of Complex Systems, University of South Bohemia in Ceske Budejovice, Zámek 136, 373 33 Nove Hrady, Czech Republic (Š.P.);Institute of Computer Science, Academy of Sciences of the Czech Republic, 18207 Praha 8, Czech Republic (C.M.); andSchool of Biological and Chemical Sciences, Queen Mary University of London, London E1 4NS, United Kingdom (L.-N.L., C.W.M.) kana@alga.cz.
Abstract:
Red algae represent an evolutionarily important group that gave rise to the whole red clade of photosynthetic organisms. They contain a unique combination of light-harvesting systems represented by a membrane-bound antenna and by phycobilisomes situated on thylakoid membrane surfaces. So far, very little has been revealed about the mobility of their phycobilisomes and the regulation of their light-harvesting system in general. Therefore, we carried out a detailed analysis of phycobilisome dynamics in several red alga strains and compared these results with the presence (or absence) of photoprotective mechanisms. Our data conclusively prove phycobilisome mobility in two model mesophilic red alga strains, Porphyridium cruentum and Rhodella violacea. In contrast, there was almost no phycobilisome mobility in the thermophilic red alga Cyanidium caldarium that was not caused by a decrease in lipid desaturation in this extremophile. Experimental data attributed this immobility to the strong phycobilisome-photosystem interaction that highly restricted phycobilisome movement. Variations in phycobilisome mobility reflect the different ways in which light-harvesting antennae can be regulated in mesophilic and thermophilic red algae. Fluorescence changes attributed in cyanobacteria to state transitions were observed only in mesophilic P. cruentum with mobile phycobilisomes, and they were absent in the extremophilic C. caldarium with immobile phycobilisomes. We suggest that state transitions have an important regulatory function in mesophilic red algae; however, in thermophilic red algae, this process is replaced by nonphotochemical quenching.
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