TY - JOUR
T1 - Regulation of lanthanide-dependent methanol oxidation pathway in the legume symbiotic nitrogen-fixing bacterium Bradyrhizobium sp. strain Ce-3
AU - Pastawan, Viagian
AU - Suganuma, Soya
AU - Mizuno, Kosuke
AU - Wang, Lun
AU - Tani, Akio
AU - Mitsui, Ryoji
AU - Nakamura, Kohei
AU - Shimada, Masaya
AU - Hayakawa, Takashi
AU - Fitriyanto, Nanung Agus
AU - Nakagawa, Tomoyuki
N1 - Funding Information:
This research was funded in part by a Grant-in-Aid for Scientific Research (B) No. 17H03949 (to TN). This research was also supported by the Joint Usage/Research Center , Institute of Plant Science and Resources , Okayama University, Japan .
Publisher Copyright:
© 2020 The Society for Biotechnology, Japan
PY - 2020/12
Y1 - 2020/12
N2 - Lanthanide (Ln)-dependent XoxF-type methanol dehydrogenase (MDH) genes can be found in bacteria that are not believed to be methylotrophs, and studies on their methylotrophic pathways and their use of Ln are now emerging. Ln-dependent methanol utilization in Bradyrhizobium sp. strain Ce-3, which belongs to the Bradyrhizobium elkanii superclade (clade II), was investigated in this study. Strain Ce-3 was able to grow in a media containing methanol as a sole carbon source and light Ln (L-Ln, i.e., La3+, Ce3+, Pr3+, and Nd3+), whereas the strain did not show any growth with Ca2+ or the heavy Ln, Sm3+. We found that the uptake of L-Ln is enhanced mainly by methanol and L-Ln species, and the strain incorporates each L-Ln species evenly into the cell. The genome of strain Ce-3 encodes the xox cluster for Ln-dependent methanol dehydrogenase (xoxF) and the enzymes participating in the methanol oxidation pathway (xoxG, fldA, and gfaA) and regulation (xoxR), but the gene encoding formate dehydrogenase (FDH) was not found in the cluster. MDH, formaldehyde dehydrogenase, and FDH activities were induced by methanol/Ln. Moreover, expression of the genes on the xox cluster was upregulated by methanol/Ln. Based on these results, we concluded that strain Ce-3 possesses a complete L-Ln-dependent methanol oxidation pathway, which is dissimilar to plant phyllospheric bacteria, Methylobacterium species, with a transport system for L-Ln species.
AB - Lanthanide (Ln)-dependent XoxF-type methanol dehydrogenase (MDH) genes can be found in bacteria that are not believed to be methylotrophs, and studies on their methylotrophic pathways and their use of Ln are now emerging. Ln-dependent methanol utilization in Bradyrhizobium sp. strain Ce-3, which belongs to the Bradyrhizobium elkanii superclade (clade II), was investigated in this study. Strain Ce-3 was able to grow in a media containing methanol as a sole carbon source and light Ln (L-Ln, i.e., La3+, Ce3+, Pr3+, and Nd3+), whereas the strain did not show any growth with Ca2+ or the heavy Ln, Sm3+. We found that the uptake of L-Ln is enhanced mainly by methanol and L-Ln species, and the strain incorporates each L-Ln species evenly into the cell. The genome of strain Ce-3 encodes the xox cluster for Ln-dependent methanol dehydrogenase (xoxF) and the enzymes participating in the methanol oxidation pathway (xoxG, fldA, and gfaA) and regulation (xoxR), but the gene encoding formate dehydrogenase (FDH) was not found in the cluster. MDH, formaldehyde dehydrogenase, and FDH activities were induced by methanol/Ln. Moreover, expression of the genes on the xox cluster was upregulated by methanol/Ln. Based on these results, we concluded that strain Ce-3 possesses a complete L-Ln-dependent methanol oxidation pathway, which is dissimilar to plant phyllospheric bacteria, Methylobacterium species, with a transport system for L-Ln species.
KW - Bradyrhizobium sp. strain Ce-3
KW - Light lanthanide
KW - Methanol oxidation pathway
KW - XoxF
KW - xox gene cluster
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U2 - 10.1016/j.jbiosc.2020.07.012
DO - 10.1016/j.jbiosc.2020.07.012
M3 - Article
C2 - 32830039
AN - SCOPUS:85089556819
SN - 1389-1723
VL - 130
SP - 582
EP - 587
JO - Journal of Bioscience and Bioengineering
JF - Journal of Bioscience and Bioengineering
IS - 6
ER -