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Studies on structure-function relationships of acetolactate decarboxylase from Enterobacter cloacae

Acetoin is an important bio-based platform chemical with wide applications. Among all bacterial strains, Enterobacter cloacae is a well-known acetoin producer via α-acetolactate decarboxylase (ALDC), which converts α-acetolactate into acetoin and is identified as the key enzyme in the biosynthetic p...

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Autores principales: Ji, Fangling, Feng, Yanbin, Li, Mingyang, Yang, Yongliang, Wang, Tianqi, Wang, Jingyun, Bao, Yongming, Xue, Song
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9090609/
https://www.ncbi.nlm.nih.gov/pubmed/35558320
http://dx.doi.org/10.1039/c8ra07379a
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author Ji, Fangling
Feng, Yanbin
Li, Mingyang
Yang, Yongliang
Wang, Tianqi
Wang, Jingyun
Bao, Yongming
Xue, Song
author_facet Ji, Fangling
Feng, Yanbin
Li, Mingyang
Yang, Yongliang
Wang, Tianqi
Wang, Jingyun
Bao, Yongming
Xue, Song
author_sort Ji, Fangling
collection PubMed
description Acetoin is an important bio-based platform chemical with wide applications. Among all bacterial strains, Enterobacter cloacae is a well-known acetoin producer via α-acetolactate decarboxylase (ALDC), which converts α-acetolactate into acetoin and is identified as the key enzyme in the biosynthetic pathway of acetoin. In this work, the enzyme properties of Enterobacter cloacae ALDC (E.c.-ALDC) were characterized, revealing a K(m) value of 12.19 mM and a k(cat) value of 0.96 s(−1). Meanwhile, the optimum pH of E.c.-ALDC was 6.5, and the activity of E.c.-ALDC was activated by Mn(2+), Ba(2+), Mg(2+), Zn(2+) and Ca(2+), while Cu(2+) and Fe(2+) significantly inhibited ALDC activity. More importantly, we solved and reported the first crystal structure of E.c.-ALDC at 2.4 Å resolution. The active centre consists of a zinc ion coordinated by highly conserved histidines (199, 201 and 212) and glutamates (70 and 259). However, the conserved Arg150 in E.c.-ALDC orients away from the zinc ion in the active centre of the molecule, losing contact with the zinc ion. Molecular docking of the two enantiomers of α-acetolactate, (R)-acetolactate and (S)-acetolactate allows us to further investigate the interaction networks of E.c.-ALDC with the unique conformation of Arg150. In the models, no direct contacts are observed between Arg150 and the substrates, which is unlikely to maintain the stabilization function of Arg150 in the catalytic reaction. The structure of E.c.-ALDC provides valuable information about its function, allowing a deeper understanding of the catalytic mechanism of ALDCs.
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spelling pubmed-90906092022-05-11 Studies on structure-function relationships of acetolactate decarboxylase from Enterobacter cloacae Ji, Fangling Feng, Yanbin Li, Mingyang Yang, Yongliang Wang, Tianqi Wang, Jingyun Bao, Yongming Xue, Song RSC Adv Chemistry Acetoin is an important bio-based platform chemical with wide applications. Among all bacterial strains, Enterobacter cloacae is a well-known acetoin producer via α-acetolactate decarboxylase (ALDC), which converts α-acetolactate into acetoin and is identified as the key enzyme in the biosynthetic pathway of acetoin. In this work, the enzyme properties of Enterobacter cloacae ALDC (E.c.-ALDC) were characterized, revealing a K(m) value of 12.19 mM and a k(cat) value of 0.96 s(−1). Meanwhile, the optimum pH of E.c.-ALDC was 6.5, and the activity of E.c.-ALDC was activated by Mn(2+), Ba(2+), Mg(2+), Zn(2+) and Ca(2+), while Cu(2+) and Fe(2+) significantly inhibited ALDC activity. More importantly, we solved and reported the first crystal structure of E.c.-ALDC at 2.4 Å resolution. The active centre consists of a zinc ion coordinated by highly conserved histidines (199, 201 and 212) and glutamates (70 and 259). However, the conserved Arg150 in E.c.-ALDC orients away from the zinc ion in the active centre of the molecule, losing contact with the zinc ion. Molecular docking of the two enantiomers of α-acetolactate, (R)-acetolactate and (S)-acetolactate allows us to further investigate the interaction networks of E.c.-ALDC with the unique conformation of Arg150. In the models, no direct contacts are observed between Arg150 and the substrates, which is unlikely to maintain the stabilization function of Arg150 in the catalytic reaction. The structure of E.c.-ALDC provides valuable information about its function, allowing a deeper understanding of the catalytic mechanism of ALDCs. The Royal Society of Chemistry 2018-11-20 /pmc/articles/PMC9090609/ /pubmed/35558320 http://dx.doi.org/10.1039/c8ra07379a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ji, Fangling
Feng, Yanbin
Li, Mingyang
Yang, Yongliang
Wang, Tianqi
Wang, Jingyun
Bao, Yongming
Xue, Song
Studies on structure-function relationships of acetolactate decarboxylase from Enterobacter cloacae
title Studies on structure-function relationships of acetolactate decarboxylase from Enterobacter cloacae
title_full Studies on structure-function relationships of acetolactate decarboxylase from Enterobacter cloacae
title_fullStr Studies on structure-function relationships of acetolactate decarboxylase from Enterobacter cloacae
title_full_unstemmed Studies on structure-function relationships of acetolactate decarboxylase from Enterobacter cloacae
title_short Studies on structure-function relationships of acetolactate decarboxylase from Enterobacter cloacae
title_sort studies on structure-function relationships of acetolactate decarboxylase from enterobacter cloacae
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9090609/
https://www.ncbi.nlm.nih.gov/pubmed/35558320
http://dx.doi.org/10.1039/c8ra07379a
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