Cyanobacteria have developed responses to maintain the balance between the energy absorbed and the energy used in different pigment-protein complexes. One of the relatively rapid (a few minutes) responses is activated when the cells are exposed to high light intensities. This mechanism thermally dissipates excitation energy at the level of the phycobilisome (PB) antenna before it reaches the reaction center. When exposed to low intensities of light that modify the redox state of the plastoquinone pool, the so-called state transitions redistribute energy between photosystem I and II. Experimental techniques to investigate the underlying mechanisms of these responses, such as pulse-amplitude modulated fluorometry, are based on spectrally inte...
Photosynthetic activity and respiration share the thylakoid membrane in cyanobacteria. We present a ...
Photosynthetic activity and respiration share the thylakoid membrane in cyanobacteria. We present a ...
In oxygenic photosynthetic organisms two photosystems, namely photosystem I (PSI) and photosystem II...
Cyanobacteria have developed responses to maintain the balance between the energy absorbed and the e...
Cyanobacteria have developed responses to maintain the balance between the energy absorbed and the e...
International audienceCyanobacteria have developed responses to maintain the balance between the ene...
International audienceCyanobacteria have developed responses to maintain the balance between the ene...
Cyanobacteria use chlorophyll and phycobiliproteins to harvest light. The resulting excitation energ...
International audienceCyanobacteria use chlorophyll and phycobiliproteins to harvest light. The resu...
Cyanobacteria use chlorophyll and phycobiliproteins to harvest light. The resulting excitation energ...
International audienceCyanobacteria use chlorophyll and phycobiliproteins to harvest light. The resu...
International audienceCyanobacteria can rapidly regulate the relative activity of their photosynthet...
Cyanobacteria can rapidly regulate the relative activity of their photosynthetic complexes photosyst...
Photosynthetic organisms cope with changes in light quality by balancing the excitation energy flow ...
Photosynthetic organisms cope with changes in light quality by balancing the excitation energy flow ...
Photosynthetic activity and respiration share the thylakoid membrane in cyanobacteria. We present a ...
Photosynthetic activity and respiration share the thylakoid membrane in cyanobacteria. We present a ...
In oxygenic photosynthetic organisms two photosystems, namely photosystem I (PSI) and photosystem II...
Cyanobacteria have developed responses to maintain the balance between the energy absorbed and the e...
Cyanobacteria have developed responses to maintain the balance between the energy absorbed and the e...
International audienceCyanobacteria have developed responses to maintain the balance between the ene...
International audienceCyanobacteria have developed responses to maintain the balance between the ene...
Cyanobacteria use chlorophyll and phycobiliproteins to harvest light. The resulting excitation energ...
International audienceCyanobacteria use chlorophyll and phycobiliproteins to harvest light. The resu...
Cyanobacteria use chlorophyll and phycobiliproteins to harvest light. The resulting excitation energ...
International audienceCyanobacteria use chlorophyll and phycobiliproteins to harvest light. The resu...
International audienceCyanobacteria can rapidly regulate the relative activity of their photosynthet...
Cyanobacteria can rapidly regulate the relative activity of their photosynthetic complexes photosyst...
Photosynthetic organisms cope with changes in light quality by balancing the excitation energy flow ...
Photosynthetic organisms cope with changes in light quality by balancing the excitation energy flow ...
Photosynthetic activity and respiration share the thylakoid membrane in cyanobacteria. We present a ...
Photosynthetic activity and respiration share the thylakoid membrane in cyanobacteria. We present a ...
In oxygenic photosynthetic organisms two photosystems, namely photosystem I (PSI) and photosystem II...