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Investigating the use of conducting oligomers and redox molecules in CdS–MoFeP biohybrids

In this work we report the effect of incorporating conducting oligophenylenes and a cobaltocene-based redox mediator on photodriven electron transfer between thioglycolic acid (TGA) capped CdS nanorods (NR) and the native nitrogenase MoFe protein (MoFeP) by following the reduction of H(+) to H(2). F...

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Autores principales: Harris, Alexander W., Roy, Shambojit, Ganguly, Saheli, Parameswar, Ashray V., Lucas, Francisco W. S., Holewinski, Adam, Goodwin, Andrew P., Cha, Jennifer N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418983/
https://www.ncbi.nlm.nih.gov/pubmed/36132854
http://dx.doi.org/10.1039/d0na00678e
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author Harris, Alexander W.
Roy, Shambojit
Ganguly, Saheli
Parameswar, Ashray V.
Lucas, Francisco W. S.
Holewinski, Adam
Goodwin, Andrew P.
Cha, Jennifer N.
author_facet Harris, Alexander W.
Roy, Shambojit
Ganguly, Saheli
Parameswar, Ashray V.
Lucas, Francisco W. S.
Holewinski, Adam
Goodwin, Andrew P.
Cha, Jennifer N.
author_sort Harris, Alexander W.
collection PubMed
description In this work we report the effect of incorporating conducting oligophenylenes and a cobaltocene-based redox mediator on photodriven electron transfer between thioglycolic acid (TGA) capped CdS nanorods (NR) and the native nitrogenase MoFe protein (MoFeP) by following the reduction of H(+) to H(2). First, we demonstrate that the addition of benzidine-a conductive diphenylene- to TGA-CdS and MoFeP increased catalytic activity by up to 3-fold as compared to CdS–MoFeP alone. In addition, in comparing the use of oligophenylenes composed of one (p-phenylenediamine), two (benzidine) or three (4,4′′-diamino-p-terphenyl)phenylene groups, the largest gain in H(2) was observed with the addition of benzidine and the lowest with phenylenediamine. As a comparison to the conductive oligophenylenes, a cobaltocene-based redox mediator was also tested with the TGA-CdS NRs and MoFeP. However, adding either cobaltocene diacid or diamine caused negligible gains in H(2) production and at higher concentrations, caused a significant decrease. Agarose gel electrophoresis revealed little to no detectable interaction between benzidine and TGA-CdS but strong binding between cobaltocene and TGA-CdS. These results suggest that the tight binding of the cobaltocene mediator to CdS may hinder electron transfer between CdS and MoFe and cause the mediator to undergo continuous reduction/oxidation events at the surface of CdS.
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spelling pubmed-94189832022-09-20 Investigating the use of conducting oligomers and redox molecules in CdS–MoFeP biohybrids Harris, Alexander W. Roy, Shambojit Ganguly, Saheli Parameswar, Ashray V. Lucas, Francisco W. S. Holewinski, Adam Goodwin, Andrew P. Cha, Jennifer N. Nanoscale Adv Chemistry In this work we report the effect of incorporating conducting oligophenylenes and a cobaltocene-based redox mediator on photodriven electron transfer between thioglycolic acid (TGA) capped CdS nanorods (NR) and the native nitrogenase MoFe protein (MoFeP) by following the reduction of H(+) to H(2). First, we demonstrate that the addition of benzidine-a conductive diphenylene- to TGA-CdS and MoFeP increased catalytic activity by up to 3-fold as compared to CdS–MoFeP alone. In addition, in comparing the use of oligophenylenes composed of one (p-phenylenediamine), two (benzidine) or three (4,4′′-diamino-p-terphenyl)phenylene groups, the largest gain in H(2) was observed with the addition of benzidine and the lowest with phenylenediamine. As a comparison to the conductive oligophenylenes, a cobaltocene-based redox mediator was also tested with the TGA-CdS NRs and MoFeP. However, adding either cobaltocene diacid or diamine caused negligible gains in H(2) production and at higher concentrations, caused a significant decrease. Agarose gel electrophoresis revealed little to no detectable interaction between benzidine and TGA-CdS but strong binding between cobaltocene and TGA-CdS. These results suggest that the tight binding of the cobaltocene mediator to CdS may hinder electron transfer between CdS and MoFe and cause the mediator to undergo continuous reduction/oxidation events at the surface of CdS. RSC 2020-12-28 /pmc/articles/PMC9418983/ /pubmed/36132854 http://dx.doi.org/10.1039/d0na00678e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Harris, Alexander W.
Roy, Shambojit
Ganguly, Saheli
Parameswar, Ashray V.
Lucas, Francisco W. S.
Holewinski, Adam
Goodwin, Andrew P.
Cha, Jennifer N.
Investigating the use of conducting oligomers and redox molecules in CdS–MoFeP biohybrids
title Investigating the use of conducting oligomers and redox molecules in CdS–MoFeP biohybrids
title_full Investigating the use of conducting oligomers and redox molecules in CdS–MoFeP biohybrids
title_fullStr Investigating the use of conducting oligomers and redox molecules in CdS–MoFeP biohybrids
title_full_unstemmed Investigating the use of conducting oligomers and redox molecules in CdS–MoFeP biohybrids
title_short Investigating the use of conducting oligomers and redox molecules in CdS–MoFeP biohybrids
title_sort investigating the use of conducting oligomers and redox molecules in cds–mofep biohybrids
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418983/
https://www.ncbi.nlm.nih.gov/pubmed/36132854
http://dx.doi.org/10.1039/d0na00678e
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