Water-soluble chlorophyll proteins (WSCP) from Brassicaceae form homotetrameric chlorophyll (Chl)–protein complexes binding one Chl per apoprotein and no carotenoids. Despite the lack of photoprotecting pigments, the complex-bound Chls displays a remarkable stability toward photodynamic damage. On the basis of a mutational study, we show that not only the presence of the phytyls is necessary for photoprotection in WSCPs, as we previously demonstrated, but also is their correct conformation and localization. The extreme heat stability of WSCP also depends on the presence of the phytyl chains, confirming their relevance for the unusual stability of WSCP
Plants contain water-soluble chlorophyll-binding proteins (WSCPs) that function neither as antennas ...
AbstractThe challenges involved in studying cofactor binding and assembly, as well as energy- and el...
The chromophore binding properties of the higher plant light-harvesting complex II have been studied...
Water-soluble chlorophyll proteins (WSCP) from Brassicaceae form homotetrameric chlorophyll (Chl)–pr...
Water-soluble chlorophyll proteins (WSCPs) of class IIa from Brassicaceae form tetrameric complexes ...
International audienceThe water-soluble chlorophyll-proteins (WSCP) of class II from Brassicaceae ar...
Water-Soluble Chlorophyll Proteins (WSCPs) from Brassicaceae are non-photosynthetic proteins which t...
A water-soluble chlorophyll-binding protein (WSCP) is the single known instance of a putative chloro...
A gene coding for water-soluble chlorophyll-binding protein (WSCP) from Brassica oleracea var. Botry...
This short review paper describes spectroscopic studies on pigment-pigment and pigment-protein inter...
We altered the chlorophyll (Chl) binding sites in various versions of water-soluble chlorophyll prot...
The Water-Soluble Chlorophyll Protein (WSCP) of Brassicaceae is a remarkably stable tetrapyrrole- bi...
The Water-Soluble Chlorophyll Protein (WSCP) of Brassicaceae is a remarkably stable tetrapyrrole- bi...
Water-soluble chlorophyll protein (WSCP) has been found in many Brassicaceae, most often in leaves. ...
The interplay between active molecules and the protein environment in light-harvesting complexes tun...
Plants contain water-soluble chlorophyll-binding proteins (WSCPs) that function neither as antennas ...
AbstractThe challenges involved in studying cofactor binding and assembly, as well as energy- and el...
The chromophore binding properties of the higher plant light-harvesting complex II have been studied...
Water-soluble chlorophyll proteins (WSCP) from Brassicaceae form homotetrameric chlorophyll (Chl)–pr...
Water-soluble chlorophyll proteins (WSCPs) of class IIa from Brassicaceae form tetrameric complexes ...
International audienceThe water-soluble chlorophyll-proteins (WSCP) of class II from Brassicaceae ar...
Water-Soluble Chlorophyll Proteins (WSCPs) from Brassicaceae are non-photosynthetic proteins which t...
A water-soluble chlorophyll-binding protein (WSCP) is the single known instance of a putative chloro...
A gene coding for water-soluble chlorophyll-binding protein (WSCP) from Brassica oleracea var. Botry...
This short review paper describes spectroscopic studies on pigment-pigment and pigment-protein inter...
We altered the chlorophyll (Chl) binding sites in various versions of water-soluble chlorophyll prot...
The Water-Soluble Chlorophyll Protein (WSCP) of Brassicaceae is a remarkably stable tetrapyrrole- bi...
The Water-Soluble Chlorophyll Protein (WSCP) of Brassicaceae is a remarkably stable tetrapyrrole- bi...
Water-soluble chlorophyll protein (WSCP) has been found in many Brassicaceae, most often in leaves. ...
The interplay between active molecules and the protein environment in light-harvesting complexes tun...
Plants contain water-soluble chlorophyll-binding proteins (WSCPs) that function neither as antennas ...
AbstractThe challenges involved in studying cofactor binding and assembly, as well as energy- and el...
The chromophore binding properties of the higher plant light-harvesting complex II have been studied...