Impact of Sulfur Starvation in Autotrophic and Heterotrophic Cultures of the Extremophilic MicroalgaGaldieria phlegrea(Cyanidiophyceae)
Author(s) -
Simona Carfagna,
Claudia Bottone,
Pia Rosa Cataletto,
Milena Petriccione,
Gabriele Pinto,
Giovanna Salbitani,
Vincenza Vona,
Antonino Pollio,
Claudia Ciniglia
Publication year - 2016
Publication title -
plant and cell physiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.975
H-Index - 152
eISSN - 1471-9053
pISSN - 0032-0781
DOI - 10.1093/pcp/pcw112
Subject(s) - autotroph , heterotroph , sulfur , glutathione , biochemistry , assimilation (phonology) , algae , cyanobacteria , chemistry , photosynthesis , biology , botany , enzyme , bacteria , genetics , linguistics , philosophy , organic chemistry
In plants and algae, sulfate assimilation and cysteine synthesis are regulated by sulfur (S) accessibility from the environment. This study reports the effects of S deprivation in autotrophic and heterotrophic cultures of Galdieria phlegrea (Cyanidiophyceae), a unicellular red alga isolated in the Solfatara crater located in Campi Flegrei (Naples, Italy), where H2S is the prevalent form of gaseous S in the fumarolic fluids and S is widespread in the soils near the fumaroles. This is the first report on the effects of S deprivation on a sulfurous microalga that is also able to grow heterotrophically in the dark. The removal of S from the culture medium of illuminated cells caused a decrease in the soluble protein content and a significant decrease in the intracellular levels of glutathione. Cells from heterotrophic cultures of G. phlegrea exhibited high levels of internal proteins and high glutathione content, which did not diminish during S starvation, but rather glutathione significantly increased. The activity of O-acetylserine(thiol)lyase (OASTL), the enzyme synthesizing cysteine, was enhanced under S deprivation in a time-dependent manner in autotrophic but not in heterotrophic cells. Analysis of the transcript abundance of the OASTL gene supports the OASTL activity increase in autotrophic cultures under S deprivation.
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