Photosystems I and II convert solar energy into the chemical energy that powers life. Chlorophyll a photochemistry, using red light (680 to 700 nm), is near universal and is considered to define the energy “red limit” of oxygenic photosynthesis. We present biophysical studies on the photosystems from a cyanobacterium grown in far-red light (750 nm). The few long-wavelength chlorophylls present are well resolved from each other and from the majority pigment, chlorophyll a. Charge separation in photosystem I and II uses chlorophyll f at 745 nm and chlorophyll f (or d) at 727 nm, respectively. Each photosystem has a few even longer-wavelength chlorophylls f that collect light and pass excitation energy uphill to the photochemically active pigm...
Cyanobacteria are major contributors to global carbon fixation and primarily use visible light (400−...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Photosystems I and II convert solar energy into the chemical energy that powers life. Chlorophyll a ...
International audiencePhotosystems I and II convert solar energy into the chemical energy that power...
International audiencePhotosystems I and II convert solar energy into the chemical energy that power...
International audiencePhotosystems I and II convert solar energy into the chemical energy that power...
Photosystem II (PSII) uses the energy from red light to split water and reduce quinone, an energy-de...
赤外光駆動型光合成をクライオ電顕で捉えることに成功 --低いエネルギーで通常の光化学反応が駆動される仕組み--. 京都大学プレスリリース. 2021-04-21.Acaryochloris marin...
Plants, algae, and cyanobacteria sustain life on Earth by using sunlight energy to produce oxygen an...
The recent discovery of extremely red-shifted chlorophyll f pigments in both photosystem I (PSI) and...
Cyanobacteria are ubiquitous in nature and have developed numerous strategies that allow them to liv...
Some terrestrial cyanobacteria can acclimate to and then utilize far-red light (FRL; λ = 700–800 nm)...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Cyanobacteria are major contributors to global carbon fixation and primarily use visible light (400−...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Photosystems I and II convert solar energy into the chemical energy that powers life. Chlorophyll a ...
International audiencePhotosystems I and II convert solar energy into the chemical energy that power...
International audiencePhotosystems I and II convert solar energy into the chemical energy that power...
International audiencePhotosystems I and II convert solar energy into the chemical energy that power...
Photosystem II (PSII) uses the energy from red light to split water and reduce quinone, an energy-de...
赤外光駆動型光合成をクライオ電顕で捉えることに成功 --低いエネルギーで通常の光化学反応が駆動される仕組み--. 京都大学プレスリリース. 2021-04-21.Acaryochloris marin...
Plants, algae, and cyanobacteria sustain life on Earth by using sunlight energy to produce oxygen an...
The recent discovery of extremely red-shifted chlorophyll f pigments in both photosystem I (PSI) and...
Cyanobacteria are ubiquitous in nature and have developed numerous strategies that allow them to liv...
Some terrestrial cyanobacteria can acclimate to and then utilize far-red light (FRL; λ = 700–800 nm)...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Cyanobacteria are major contributors to global carbon fixation and primarily use visible light (400−...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...
Far-red light (FRL) photoacclimation in cyanobacteria provides a selective growth advantage for some...