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Identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms

BACKGROUND: Fumarase catalyzes the reversible hydration of fumarate to L-malate and is a key enzyme in the tricarboxylic acid (TCA) cycle and in amino acid metabolism. Fumarase is also used for the industrial production of L-malate from the substrate fumarate. Thermostable and high-activity fumarase...

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Autores principales: Jiang, Chengjian, Wu, Lan-Lan, Zhao, Gao-Chao, Shen, Pei-Hong, Jin, Ke, Hao, Zhen-Yu, Li, Shuang-Xi, Ma, Ge-Fei, Luo, Feng-Feng, Hu, Guo-Qing, Kang, Wen-Long, Qin, Xing-Mei, Bi, You-Li, Tang, Xian-Lai, Wu, Bo
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3002918/
https://www.ncbi.nlm.nih.gov/pubmed/21092234
http://dx.doi.org/10.1186/1475-2859-9-91
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author Jiang, Chengjian
Wu, Lan-Lan
Zhao, Gao-Chao
Shen, Pei-Hong
Jin, Ke
Hao, Zhen-Yu
Li, Shuang-Xi
Ma, Ge-Fei
Luo, Feng-Feng
Hu, Guo-Qing
Kang, Wen-Long
Qin, Xing-Mei
Bi, You-Li
Tang, Xian-Lai
Wu, Bo
author_facet Jiang, Chengjian
Wu, Lan-Lan
Zhao, Gao-Chao
Shen, Pei-Hong
Jin, Ke
Hao, Zhen-Yu
Li, Shuang-Xi
Ma, Ge-Fei
Luo, Feng-Feng
Hu, Guo-Qing
Kang, Wen-Long
Qin, Xing-Mei
Bi, You-Li
Tang, Xian-Lai
Wu, Bo
author_sort Jiang, Chengjian
collection PubMed
description BACKGROUND: Fumarase catalyzes the reversible hydration of fumarate to L-malate and is a key enzyme in the tricarboxylic acid (TCA) cycle and in amino acid metabolism. Fumarase is also used for the industrial production of L-malate from the substrate fumarate. Thermostable and high-activity fumarases from organisms that inhabit extreme environments may have great potential in industry, biotechnology, and basic research. The marine environment is highly complex and considered one of the main reservoirs of microbial diversity on the planet. However, most of the microorganisms are inaccessible in nature and are not easily cultivated in the laboratory. Metagenomic approaches provide a powerful tool to isolate and identify enzymes with novel biocatalytic activities for various biotechnological applications. RESULTS: A plasmid metagenomic library was constructed from uncultivated marine microorganisms within marine water samples. Through sequence-based screening of the DNA library, a gene encoding a novel fumarase (named FumF) was isolated. Amino acid sequence analysis revealed that the FumF protein shared the greatest homology with Class II fumarate hydratases from Bacteroides sp. 2_1_33B and Parabacteroides distasonis ATCC 8503 (26% identical and 43% similar). The putative fumarase gene was subcloned into pETBlue-2 vector and expressed in E. coli BL21(DE3)pLysS. The recombinant protein was purified to homogeneity. Functional characterization by high performance liquid chromatography confirmed that the recombinant FumF protein catalyzed the hydration of fumarate to form L-malate. The maximum activity for FumF protein occurred at pH 8.5 and 55°C in 5 mM Mg(2+). The enzyme showed higher affinity and catalytic efficiency under optimal reaction conditions: K(m)= 0.48 mM, V(max )= 827 μM/min/mg, and k(cat)/K(m )= 1900 mM/s. CONCLUSIONS: We isolated a novel fumarase gene, fumF, from a sequence-based screen of a plasmid metagenomic library from uncultivated marine microorganisms. The properties of FumF protein may be ideal for the industrial production of L-malate under higher temperature conditions. The identification of FumF underscores the potential of marine metagenome screening for novel biomolecules.
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spelling pubmed-30029182010-12-17 Identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms Jiang, Chengjian Wu, Lan-Lan Zhao, Gao-Chao Shen, Pei-Hong Jin, Ke Hao, Zhen-Yu Li, Shuang-Xi Ma, Ge-Fei Luo, Feng-Feng Hu, Guo-Qing Kang, Wen-Long Qin, Xing-Mei Bi, You-Li Tang, Xian-Lai Wu, Bo Microb Cell Fact Research BACKGROUND: Fumarase catalyzes the reversible hydration of fumarate to L-malate and is a key enzyme in the tricarboxylic acid (TCA) cycle and in amino acid metabolism. Fumarase is also used for the industrial production of L-malate from the substrate fumarate. Thermostable and high-activity fumarases from organisms that inhabit extreme environments may have great potential in industry, biotechnology, and basic research. The marine environment is highly complex and considered one of the main reservoirs of microbial diversity on the planet. However, most of the microorganisms are inaccessible in nature and are not easily cultivated in the laboratory. Metagenomic approaches provide a powerful tool to isolate and identify enzymes with novel biocatalytic activities for various biotechnological applications. RESULTS: A plasmid metagenomic library was constructed from uncultivated marine microorganisms within marine water samples. Through sequence-based screening of the DNA library, a gene encoding a novel fumarase (named FumF) was isolated. Amino acid sequence analysis revealed that the FumF protein shared the greatest homology with Class II fumarate hydratases from Bacteroides sp. 2_1_33B and Parabacteroides distasonis ATCC 8503 (26% identical and 43% similar). The putative fumarase gene was subcloned into pETBlue-2 vector and expressed in E. coli BL21(DE3)pLysS. The recombinant protein was purified to homogeneity. Functional characterization by high performance liquid chromatography confirmed that the recombinant FumF protein catalyzed the hydration of fumarate to form L-malate. The maximum activity for FumF protein occurred at pH 8.5 and 55°C in 5 mM Mg(2+). The enzyme showed higher affinity and catalytic efficiency under optimal reaction conditions: K(m)= 0.48 mM, V(max )= 827 μM/min/mg, and k(cat)/K(m )= 1900 mM/s. CONCLUSIONS: We isolated a novel fumarase gene, fumF, from a sequence-based screen of a plasmid metagenomic library from uncultivated marine microorganisms. The properties of FumF protein may be ideal for the industrial production of L-malate under higher temperature conditions. The identification of FumF underscores the potential of marine metagenome screening for novel biomolecules. BioMed Central 2010-11-23 /pmc/articles/PMC3002918/ /pubmed/21092234 http://dx.doi.org/10.1186/1475-2859-9-91 Text en Copyright ©2010 Jiang et al; licensee BioMed Central Ltd. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (<url>http://creativecommons.org/licenses/by/2.0</url>), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Jiang, Chengjian
Wu, Lan-Lan
Zhao, Gao-Chao
Shen, Pei-Hong
Jin, Ke
Hao, Zhen-Yu
Li, Shuang-Xi
Ma, Ge-Fei
Luo, Feng-Feng
Hu, Guo-Qing
Kang, Wen-Long
Qin, Xing-Mei
Bi, You-Li
Tang, Xian-Lai
Wu, Bo
Identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms
title Identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms
title_full Identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms
title_fullStr Identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms
title_full_unstemmed Identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms
title_short Identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms
title_sort identification and characterization of a novel fumarase gene by metagenome expression cloning from marine microorganisms
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3002918/
https://www.ncbi.nlm.nih.gov/pubmed/21092234
http://dx.doi.org/10.1186/1475-2859-9-91
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