TY - JOUR
T1 - Analysis of bacterial xylose isomerase gene diversity using gene-targeted metagenomics
AU - Nurdiani, Dini
AU - Ito, Michihiro
AU - Maruyama, Toru
AU - Terahara, Takeshi
AU - Mori, Tetsushi
AU - Ugawa, Shin
AU - Takeyama, Haruko
N1 - Funding Information:
This work was partially supported by grants from the New Energy and Industrial Technology Development Organization (NEDO), Global COE Program of Ministry of Education, Culture, Sports, Science and Technology (MEXT) Center for Practical Chemical Wisdom, High-Tech Research Center Project for Private Universities: matching fund subsidy from MEXT, and Core Research for Evolutionary Science and Technology Project (CREST). We thank Dr. Yuko Ito to support the soil sampling.
Publisher Copyright:
© 2015 .
PY - 2015/8/1
Y1 - 2015/8/1
N2 - Bacterial xylose isomerases (XI) are promising resources for efficient biofuel production from xylose in lignocellulosic biomass. Here, we investigated xylose isomerase gene (. xylA) diversity in three soil metagenomes differing in plant vegetation and geographical location, using an amplicon pyrosequencing approach and two newly-designed primer sets. A total of 158,555 reads from three metagenomic DNA replicates for each soil sample were classified into 1127 phylotypes, detected in triplicate and defined by 90% amino acid identity. The phylotype coverage was estimated to be within the range of 84.0-92.7%. The xylA gene phylotypes obtained were phylogenetically distributed across the two known xylA groups. They shared 49-100% identities with their closest-related XI sequences in GenBank. Phylotypes demonstrating <90% identity with known XIs in the database accounted for 89% of the total xylA phylotypes. The differences among xylA members and compositions within each soil sample were significantly smaller than they were between different soils based on a UniFrac distance analysis, suggesting soil-specific xylA genotypes and taxonomic compositions. The differences among xylA members and their compositions in the soil were strongly correlated with 16S rRNA variation between soil samples, also assessed by amplicon pyrosequencing. This is the first report of xylA diversity in environmental samples assessed by amplicon pyrosequencing. Our data provide information regarding xylA diversity in nature, and can be a basis for the screening of novel xylA genotypes for practical applications.
AB - Bacterial xylose isomerases (XI) are promising resources for efficient biofuel production from xylose in lignocellulosic biomass. Here, we investigated xylose isomerase gene (. xylA) diversity in three soil metagenomes differing in plant vegetation and geographical location, using an amplicon pyrosequencing approach and two newly-designed primer sets. A total of 158,555 reads from three metagenomic DNA replicates for each soil sample were classified into 1127 phylotypes, detected in triplicate and defined by 90% amino acid identity. The phylotype coverage was estimated to be within the range of 84.0-92.7%. The xylA gene phylotypes obtained were phylogenetically distributed across the two known xylA groups. They shared 49-100% identities with their closest-related XI sequences in GenBank. Phylotypes demonstrating <90% identity with known XIs in the database accounted for 89% of the total xylA phylotypes. The differences among xylA members and compositions within each soil sample were significantly smaller than they were between different soils based on a UniFrac distance analysis, suggesting soil-specific xylA genotypes and taxonomic compositions. The differences among xylA members and their compositions in the soil were strongly correlated with 16S rRNA variation between soil samples, also assessed by amplicon pyrosequencing. This is the first report of xylA diversity in environmental samples assessed by amplicon pyrosequencing. Our data provide information regarding xylA diversity in nature, and can be a basis for the screening of novel xylA genotypes for practical applications.
KW - Biodiversity
KW - Bioethanol production
KW - Lignocellulosic biomass
KW - Metagenome
KW - Next generation sequencing
KW - Xylose
KW - Xylose isomerase
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U2 - 10.1016/j.jbiosc.2014.12.022
DO - 10.1016/j.jbiosc.2014.12.022
M3 - Article
C2 - 25656071
AN - SCOPUS:84937253557
SN - 1389-1723
VL - 120
SP - 174
EP - 180
JO - Journal of Bioscience and Bioengineering
JF - Journal of Bioscience and Bioengineering
IS - 2
ER -