AI Article Synopsis

  • Phycobilisomes (PBS) in cyanobacteria and red algae serve as crucial photosynthetic antenna complexes, with different sensitivities to stress observed between PBS associated with Photosystem I (PSI) and Photosystem II (PSII).
  • Preillumination with far-red light, which PSI absorbs, increases PBS fluorescence and causes observable changes in the redox state of PSI, while not affecting PSII, indicating that PBS directly transfers energy to PSI without involving PSII.
  • The study suggests a new photoprotective role for PBS in red algae, highlighting its importance in stress response and energy transfer efficiency.

Article Abstract

Phycobilisomes (PBS) are the major photosynthetic antenna complexes in cyanobacteria and red algae. In the red microalga Galdieria sulphuraria, action spectra measured separately for photosynthetic activities of photosystem I (PSI) and photosystem II (PSII) demonstrate that PBS fraction attributed to PSI is more sensitive to stress conditions and upon nitrogen starvation disappears from the cell earlier than the fraction of PBS coupled to PSII. Preillumination of the cells by actinic far-red light primarily absorbed by PSI caused an increase in the amplitude of the PBS low-temperature fluorescence emission that was accompanied by the decrease in PBS region of the PSI 77 K fluorescence excitation spectrum. Under the same conditions, fluorescence excitation spectrum of PSII remained unchanged. The amplitude of P700 photooxidation in PBS-absorbed light at physiological temperature was found to match the fluorescence changes observed at 77 K. The far-red light adaptations were reversible within 2-5min. It is suggested that the short-term fluorescence alterations observed in far-red light are triggered by the redox state of P700 and correspond to the temporal detachment of the PBS antenna from the core complexes of PSI. Furthermore, the absence of any change in the 77 K fluorescence excitation cross-section of PSII suggests that light energy transfer from PBS to PSI in G. sulphuraria is direct and does not occur through PSII. Finally, a novel photoprotective role of PBS in red algae is discussed.

Download full-text PDF

Source
http://dx.doi.org/10.1016/j.bbabio.2010.10.018DOI Listing

Publication Analysis

Top Keywords

far-red light
12
fluorescence excitation
12
energy transfer
8
red microalga
8
microalga galdieria
8
galdieria sulphuraria
8
pbs
8
red algae
8
excitation spectrum
8
observed far-red
8

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!