Cells of a unicellular cyanobacterium strain KC1, which were collected from Japanese fresh water Lake Biwa, formed chlorophyll (Chl) f at 6.7%, Chl a’ at 2.0% and pheophytin a at 0.96% with respect to Chl a after growth under 740 nm light. The far-red-acclimated cells (Fr cells) formed extra absorption bands of Chl f at 715 nm in addition to the major Chl a band. Fluorescence lifetimes were measured. The 405-nm laser flash, which excites mainly Chl a in photosystem I (PSI), induced a fast energy transfer to multiple fluorescence bands at 720–760 and 805 nm of Chl f at 77 K in Fr cells with almost no PSI-red-Chl a band. The 630-nm laser flash, which mainly excited photosystem II (PSII) through phycocyanin, revealed fast energy transfer to an...
AbstractThe steady-state fluorescence properties and uphill energy transfer were analyzed on intact ...
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...
AbstractWe examined energy transfer dynamics in the unique chlorophyll (Chl) f-containing cyanobacte...
The heterologous expression of the far-red absorbing chlorophyll (Chl) f in organisms that do not sy...
Chlorophylls (Chl) play pivotal roles in energy capture, transfer and charge separation in photosynt...
Chlorophylls (Chl) play pivotal roles in energy capture, transfer and charge separation in photosynt...
INTRODUCTION Terrestrial cyanobacteria often occur in environments that receive strongly filtered li...
A unicellular cyanobacterium containing Chl f was isolated from Lake Biwa. A small amount of Chl f w...
Cyanobacteria carry out photosynthetic light-energy conversion using phycobiliproteins for light har...
Cyanobacteria carry out photosynthetic light-energy conversion using phycobiliproteins for light har...
AbstractA Chl f-containing filamentous cyanobacterium was purified from stromatolites and named as H...
Cyanobacteria are major contributors to global carbon fixation and primarily use visible light (400−...
Photosystems I and II convert solar energy into the chemical energy that powers life. Chlorophyll a ...
Plants, algae, and cyanobacteria sustain life on Earth by using sunlight energy to produce oxygen an...
AbstractThe steady-state fluorescence properties and uphill energy transfer were analyzed on intact ...
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...
AbstractWe examined energy transfer dynamics in the unique chlorophyll (Chl) f-containing cyanobacte...
The heterologous expression of the far-red absorbing chlorophyll (Chl) f in organisms that do not sy...
Chlorophylls (Chl) play pivotal roles in energy capture, transfer and charge separation in photosynt...
Chlorophylls (Chl) play pivotal roles in energy capture, transfer and charge separation in photosynt...
INTRODUCTION Terrestrial cyanobacteria often occur in environments that receive strongly filtered li...
A unicellular cyanobacterium containing Chl f was isolated from Lake Biwa. A small amount of Chl f w...
Cyanobacteria carry out photosynthetic light-energy conversion using phycobiliproteins for light har...
Cyanobacteria carry out photosynthetic light-energy conversion using phycobiliproteins for light har...
AbstractA Chl f-containing filamentous cyanobacterium was purified from stromatolites and named as H...
Cyanobacteria are major contributors to global carbon fixation and primarily use visible light (400−...
Photosystems I and II convert solar energy into the chemical energy that powers life. Chlorophyll a ...
Plants, algae, and cyanobacteria sustain life on Earth by using sunlight energy to produce oxygen an...
AbstractThe steady-state fluorescence properties and uphill energy transfer were analyzed on intact ...
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...