Direct electron transfer (DET) to proteins is of considerable interest for the development of biosensors and bioelectrocatalysts. While protein structure is mainly used as a method of attaching the protein to the electrode surface, we employed bioinformatics analysis to predict the suitable orientation of the enzymes to promote DET. Structure similarity and secondary structure prediction were combined underlying localized amino-acids able to direct one of the enzyme's electron relays toward the electrode surface by creating a suitable bioelectrocatalytic nanostructure. The electro-polymerization of pyrene pyrrole onto a fluorine−doped tin oxide (FTO) electrode allowed the targeted orientation of the formate dehydrogenase enzyme from Rhodoba...
L’immobilisation fonctionnelle des enzymes redox sur un support solide conducteur, en termes de dens...
Biological electron transfer is fundamental to life on earth. Photosynthesis, respiration and many o...
The use of biomolecules in chemical applications, such as biosensors, fuel cells and chemical synthe...
Direct electron transfer (DET) to proteins is of considerable interest for the development of biosen...
Although they were first discovered more than a century ago, modern enzymatic electrodes used in enz...
To study the direct electron transfer (DET) of the multicofactor enzyme cellobiose dehydrogenase (CD...
d-Fructose dehydrogenase (FDH) gives a clear direct electron transfer (DET)-type bioelectrocatalytic...
To study the direct electron transfer (DET) of the multicofactor enzyme cellobiose dehydrogenase (CD...
Direct electron transfer (DET) between enzymes and electrodes is a key issue for practical use of bi...
International audienceRedox enzymes, which catalyze reactions involving electron transfers in living...
Stable, site-specific immobilization of redox proteins and enzymes is of great interest for the deve...
Bioelectrocatalytic systems are based on biological entities, such as enzymes, whole cells, parts of...
d-Fructose dehydrogenase (FDH) contains a flavin adenine dinucleotide (FAD) in subunit I and three h...
This is the published version.There is an emerging interest in developing bio-functionalisation rout...
Protein immobilization on electrodes is a key concept in exploiting enzymatic processes for bioelect...
L’immobilisation fonctionnelle des enzymes redox sur un support solide conducteur, en termes de dens...
Biological electron transfer is fundamental to life on earth. Photosynthesis, respiration and many o...
The use of biomolecules in chemical applications, such as biosensors, fuel cells and chemical synthe...
Direct electron transfer (DET) to proteins is of considerable interest for the development of biosen...
Although they were first discovered more than a century ago, modern enzymatic electrodes used in enz...
To study the direct electron transfer (DET) of the multicofactor enzyme cellobiose dehydrogenase (CD...
d-Fructose dehydrogenase (FDH) gives a clear direct electron transfer (DET)-type bioelectrocatalytic...
To study the direct electron transfer (DET) of the multicofactor enzyme cellobiose dehydrogenase (CD...
Direct electron transfer (DET) between enzymes and electrodes is a key issue for practical use of bi...
International audienceRedox enzymes, which catalyze reactions involving electron transfers in living...
Stable, site-specific immobilization of redox proteins and enzymes is of great interest for the deve...
Bioelectrocatalytic systems are based on biological entities, such as enzymes, whole cells, parts of...
d-Fructose dehydrogenase (FDH) contains a flavin adenine dinucleotide (FAD) in subunit I and three h...
This is the published version.There is an emerging interest in developing bio-functionalisation rout...
Protein immobilization on electrodes is a key concept in exploiting enzymatic processes for bioelect...
L’immobilisation fonctionnelle des enzymes redox sur un support solide conducteur, en termes de dens...
Biological electron transfer is fundamental to life on earth. Photosynthesis, respiration and many o...
The use of biomolecules in chemical applications, such as biosensors, fuel cells and chemical synthe...