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Single crystal spectroscopy and multiple structures from one crystal (MSOX) define catalysis in copper nitrite reductases

Many enzymes utilize redox-coupled centers for performing catalysis where these centers are used to control and regulate the transfer of electrons required for catalysis, whose untimely delivery can lead to a state incapable of binding the substrate, i.e., a dead-end enzyme. Copper nitrite reductase...

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Autores principales: Rose, Samuel L., Baba, Seiki, Okumura, Hideo, Antonyuk, Svetlana V., Sasaki, Daisuke, Hedison, Tobias M., Shanmugam, Muralidharan, Heyes, Derren J., Scrutton, Nigel S., Kumasaka, Takashi, Tosha, Takehiko, Eady, Robert R., Yamamoto, Masaki, Hasnain, S. Samar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9335323/
https://www.ncbi.nlm.nih.gov/pubmed/35862453
http://dx.doi.org/10.1073/pnas.2205664119
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author Rose, Samuel L.
Baba, Seiki
Okumura, Hideo
Antonyuk, Svetlana V.
Sasaki, Daisuke
Hedison, Tobias M.
Shanmugam, Muralidharan
Heyes, Derren J.
Scrutton, Nigel S.
Kumasaka, Takashi
Tosha, Takehiko
Eady, Robert R.
Yamamoto, Masaki
Hasnain, S. Samar
author_facet Rose, Samuel L.
Baba, Seiki
Okumura, Hideo
Antonyuk, Svetlana V.
Sasaki, Daisuke
Hedison, Tobias M.
Shanmugam, Muralidharan
Heyes, Derren J.
Scrutton, Nigel S.
Kumasaka, Takashi
Tosha, Takehiko
Eady, Robert R.
Yamamoto, Masaki
Hasnain, S. Samar
author_sort Rose, Samuel L.
collection PubMed
description Many enzymes utilize redox-coupled centers for performing catalysis where these centers are used to control and regulate the transfer of electrons required for catalysis, whose untimely delivery can lead to a state incapable of binding the substrate, i.e., a dead-end enzyme. Copper nitrite reductases (CuNiRs), which catalyze the reduction of nitrite to nitric oxide (NO), have proven to be a good model system for studying these complex processes including proton-coupled electron transfer (ET) and their orchestration for substrate binding/utilization. Recently, a two-domain CuNiR from a Rhizobia species (Br(2D)NiR) has been discovered with a substantially lower enzymatic activity where the catalytic type-2 Cu (T2Cu) site is occupied by two water molecules requiring their displacement for the substrate nitrite to bind. Single crystal spectroscopy combined with MSOX (multiple structures from one crystal) for both the as-isolated and nitrite-soaked crystals clearly demonstrate that inter-Cu ET within the coupled T1Cu-T2Cu redox system is heavily gated. Laser-flash photolysis and optical spectroscopy showed rapid ET from photoexcited NADH to the T1Cu center but little or no inter-Cu ET in the absence of nitrite. Furthermore, incomplete reoxidation of the T1Cu site (∼20% electrons transferred) was observed in the presence of nitrite, consistent with a slow formation of NO species in the serial structures of the MSOX movie obtained from the nitrite-soaked crystal, which is likely to be responsible for the lower activity of this CuNiR. Our approach is of direct relevance for studying redox reactions in a wide range of biological systems including metalloproteins that make up at least 30% of all proteins.
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spelling pubmed-93353232022-07-30 Single crystal spectroscopy and multiple structures from one crystal (MSOX) define catalysis in copper nitrite reductases Rose, Samuel L. Baba, Seiki Okumura, Hideo Antonyuk, Svetlana V. Sasaki, Daisuke Hedison, Tobias M. Shanmugam, Muralidharan Heyes, Derren J. Scrutton, Nigel S. Kumasaka, Takashi Tosha, Takehiko Eady, Robert R. Yamamoto, Masaki Hasnain, S. Samar Proc Natl Acad Sci U S A Biological Sciences Many enzymes utilize redox-coupled centers for performing catalysis where these centers are used to control and regulate the transfer of electrons required for catalysis, whose untimely delivery can lead to a state incapable of binding the substrate, i.e., a dead-end enzyme. Copper nitrite reductases (CuNiRs), which catalyze the reduction of nitrite to nitric oxide (NO), have proven to be a good model system for studying these complex processes including proton-coupled electron transfer (ET) and their orchestration for substrate binding/utilization. Recently, a two-domain CuNiR from a Rhizobia species (Br(2D)NiR) has been discovered with a substantially lower enzymatic activity where the catalytic type-2 Cu (T2Cu) site is occupied by two water molecules requiring their displacement for the substrate nitrite to bind. Single crystal spectroscopy combined with MSOX (multiple structures from one crystal) for both the as-isolated and nitrite-soaked crystals clearly demonstrate that inter-Cu ET within the coupled T1Cu-T2Cu redox system is heavily gated. Laser-flash photolysis and optical spectroscopy showed rapid ET from photoexcited NADH to the T1Cu center but little or no inter-Cu ET in the absence of nitrite. Furthermore, incomplete reoxidation of the T1Cu site (∼20% electrons transferred) was observed in the presence of nitrite, consistent with a slow formation of NO species in the serial structures of the MSOX movie obtained from the nitrite-soaked crystal, which is likely to be responsible for the lower activity of this CuNiR. Our approach is of direct relevance for studying redox reactions in a wide range of biological systems including metalloproteins that make up at least 30% of all proteins. National Academy of Sciences 2022-07-21 2022-07-26 /pmc/articles/PMC9335323/ /pubmed/35862453 http://dx.doi.org/10.1073/pnas.2205664119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Rose, Samuel L.
Baba, Seiki
Okumura, Hideo
Antonyuk, Svetlana V.
Sasaki, Daisuke
Hedison, Tobias M.
Shanmugam, Muralidharan
Heyes, Derren J.
Scrutton, Nigel S.
Kumasaka, Takashi
Tosha, Takehiko
Eady, Robert R.
Yamamoto, Masaki
Hasnain, S. Samar
Single crystal spectroscopy and multiple structures from one crystal (MSOX) define catalysis in copper nitrite reductases
title Single crystal spectroscopy and multiple structures from one crystal (MSOX) define catalysis in copper nitrite reductases
title_full Single crystal spectroscopy and multiple structures from one crystal (MSOX) define catalysis in copper nitrite reductases
title_fullStr Single crystal spectroscopy and multiple structures from one crystal (MSOX) define catalysis in copper nitrite reductases
title_full_unstemmed Single crystal spectroscopy and multiple structures from one crystal (MSOX) define catalysis in copper nitrite reductases
title_short Single crystal spectroscopy and multiple structures from one crystal (MSOX) define catalysis in copper nitrite reductases
title_sort single crystal spectroscopy and multiple structures from one crystal (msox) define catalysis in copper nitrite reductases
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9335323/
https://www.ncbi.nlm.nih.gov/pubmed/35862453
http://dx.doi.org/10.1073/pnas.2205664119
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