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Neutron crystallography and quantum chemical analysis of bilin reductase PcyA mutants reveal substrate and catalytic residue protonation states

PcyA, a ferredoxin-dependent bilin pigment reductase, catalyzes the site-specific reduction of the two vinyl groups of biliverdin (BV), producing phycocyanobilin. Previous neutron crystallography detected both the neutral BV and its protonated form (BVH(+)) in the wildtype (WT) PcyA–BV complex, and...

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Autores principales: Joutsuka, Tatsuya, Nanasawa, Ryota, Igarashi, Keisuke, Horie, Kazuki, Sugishima, Masakazu, Hagiwara, Yoshinori, Wada, Kei, Fukuyama, Keiichi, Yano, Naomine, Mori, Seiji, Ostermann, Andreas, Kusaka, Katsuhiro, Unno, Masaki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9800206/
https://www.ncbi.nlm.nih.gov/pubmed/36463961
http://dx.doi.org/10.1016/j.jbc.2022.102763
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author Joutsuka, Tatsuya
Nanasawa, Ryota
Igarashi, Keisuke
Horie, Kazuki
Sugishima, Masakazu
Hagiwara, Yoshinori
Wada, Kei
Fukuyama, Keiichi
Yano, Naomine
Mori, Seiji
Ostermann, Andreas
Kusaka, Katsuhiro
Unno, Masaki
author_facet Joutsuka, Tatsuya
Nanasawa, Ryota
Igarashi, Keisuke
Horie, Kazuki
Sugishima, Masakazu
Hagiwara, Yoshinori
Wada, Kei
Fukuyama, Keiichi
Yano, Naomine
Mori, Seiji
Ostermann, Andreas
Kusaka, Katsuhiro
Unno, Masaki
author_sort Joutsuka, Tatsuya
collection PubMed
description PcyA, a ferredoxin-dependent bilin pigment reductase, catalyzes the site-specific reduction of the two vinyl groups of biliverdin (BV), producing phycocyanobilin. Previous neutron crystallography detected both the neutral BV and its protonated form (BVH(+)) in the wildtype (WT) PcyA–BV complex, and a nearby catalytic residue Asp105 was found to have two conformations (protonated and deprotonated). Semiempirical calculations have suggested that the protonation states of BV are reflected in the absorption spectrum of the WT PcyA–BV complex. In the previously determined absorption spectra of the PcyA D105N and I86D mutants, complexed with BV, a peak at 730 nm, observed in the WT, disappeared and increased, respectively. Here, we performed neutron crystallography and quantum chemical analysis of the D105N–BV and I86D–BV complexes to determine the protonation states of BV and the surrounding residues and study the correlation between the absorption spectra and protonation states around BV. Neutron structures elucidated that BV in the D105N mutant is in a neutral state, whereas that in the I86D mutant is dominantly in a protonated state. Glu76 and His88 showed different hydrogen bonding with surrounding residues compared with WT PcyA, further explaining why D105N and I86D have much lower activities for phycocyanobilin synthesis than the WT PcyA. Our quantum mechanics/molecular mechanics calculations of the absorption spectra showed that the spectral change in D105N arises from Glu76 deprotonation, consistent with the neutron structure. Collectively, our findings reveal more mechanistic details of bilin pigment biosynthesis.
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spelling pubmed-98002062023-01-03 Neutron crystallography and quantum chemical analysis of bilin reductase PcyA mutants reveal substrate and catalytic residue protonation states Joutsuka, Tatsuya Nanasawa, Ryota Igarashi, Keisuke Horie, Kazuki Sugishima, Masakazu Hagiwara, Yoshinori Wada, Kei Fukuyama, Keiichi Yano, Naomine Mori, Seiji Ostermann, Andreas Kusaka, Katsuhiro Unno, Masaki J Biol Chem Research Article PcyA, a ferredoxin-dependent bilin pigment reductase, catalyzes the site-specific reduction of the two vinyl groups of biliverdin (BV), producing phycocyanobilin. Previous neutron crystallography detected both the neutral BV and its protonated form (BVH(+)) in the wildtype (WT) PcyA–BV complex, and a nearby catalytic residue Asp105 was found to have two conformations (protonated and deprotonated). Semiempirical calculations have suggested that the protonation states of BV are reflected in the absorption spectrum of the WT PcyA–BV complex. In the previously determined absorption spectra of the PcyA D105N and I86D mutants, complexed with BV, a peak at 730 nm, observed in the WT, disappeared and increased, respectively. Here, we performed neutron crystallography and quantum chemical analysis of the D105N–BV and I86D–BV complexes to determine the protonation states of BV and the surrounding residues and study the correlation between the absorption spectra and protonation states around BV. Neutron structures elucidated that BV in the D105N mutant is in a neutral state, whereas that in the I86D mutant is dominantly in a protonated state. Glu76 and His88 showed different hydrogen bonding with surrounding residues compared with WT PcyA, further explaining why D105N and I86D have much lower activities for phycocyanobilin synthesis than the WT PcyA. Our quantum mechanics/molecular mechanics calculations of the absorption spectra showed that the spectral change in D105N arises from Glu76 deprotonation, consistent with the neutron structure. Collectively, our findings reveal more mechanistic details of bilin pigment biosynthesis. American Society for Biochemistry and Molecular Biology 2022-12-01 /pmc/articles/PMC9800206/ /pubmed/36463961 http://dx.doi.org/10.1016/j.jbc.2022.102763 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Joutsuka, Tatsuya
Nanasawa, Ryota
Igarashi, Keisuke
Horie, Kazuki
Sugishima, Masakazu
Hagiwara, Yoshinori
Wada, Kei
Fukuyama, Keiichi
Yano, Naomine
Mori, Seiji
Ostermann, Andreas
Kusaka, Katsuhiro
Unno, Masaki
Neutron crystallography and quantum chemical analysis of bilin reductase PcyA mutants reveal substrate and catalytic residue protonation states
title Neutron crystallography and quantum chemical analysis of bilin reductase PcyA mutants reveal substrate and catalytic residue protonation states
title_full Neutron crystallography and quantum chemical analysis of bilin reductase PcyA mutants reveal substrate and catalytic residue protonation states
title_fullStr Neutron crystallography and quantum chemical analysis of bilin reductase PcyA mutants reveal substrate and catalytic residue protonation states
title_full_unstemmed Neutron crystallography and quantum chemical analysis of bilin reductase PcyA mutants reveal substrate and catalytic residue protonation states
title_short Neutron crystallography and quantum chemical analysis of bilin reductase PcyA mutants reveal substrate and catalytic residue protonation states
title_sort neutron crystallography and quantum chemical analysis of bilin reductase pcya mutants reveal substrate and catalytic residue protonation states
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9800206/
https://www.ncbi.nlm.nih.gov/pubmed/36463961
http://dx.doi.org/10.1016/j.jbc.2022.102763
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