scholarly journals Complete Genome Sequence of Herbaspirillum hiltneri N3 (DSM 17495), Isolated from Surface-Sterilized Wheat Roots

2015 ◽  
Vol 3 (5) ◽  
Author(s):  
Dieval Guizelini ◽  
Paula M. Saizaki ◽  
Nilson A. R. Coimbra ◽  
Vinicius A. Weiss ◽  
Helisson Faoro ◽  
...  

We report the complete genome sequence of Herbaspirillum hiltneri N3 (DSM 17495), a member of the genus Herbaspirillum of the Betaproteobacteria . The genome is contained in a single chromosome, and analysis revealed that N3 lacks the whole nitrogen fixation ( nif ) gene cluster, confirming its inability to fix nitrogen.

2017 ◽  
Vol 5 (35) ◽  
Author(s):  
Rachel J. M. Brewer ◽  
Timothy L. Haskett ◽  
Joshua P. Ramsay ◽  
Graham W. O’Hara ◽  
Jason J. Terpolilli

ABSTRACT We report here the complete genome sequence of Mesorhizobium ciceri bv. biserrulae strain WSM1497, the efficient nitrogen-fixing microsymbiont and commercial inoculant in Australia of the forage legume Biserrula pelecinus. The genome consists of 7.2 Mb distributed across a single chromosome (6.67 Mb) and a single plasmid (0.53 Mb).


2016 ◽  
Vol 4 (5) ◽  
Author(s):  
Yuxin Xu ◽  
Man Yu ◽  
Alin Shen

Rhodococcus sp. WB1 is a polychlorinated biphenyl degrader which was isolated from contaminated soil in Zhejiang, China. Here, we present the complete genome sequence. The analysis of this genome indicated that a biphenyl-degrading gene cluster and several xenobiotic metabolism pathways are harbored.


2016 ◽  
Vol 4 (3) ◽  
Author(s):  
Timothy Haskett ◽  
Penghao Wang ◽  
Joshua Ramsay ◽  
Graham O’Hara ◽  
Wayne Reeve ◽  
...  

We report the complete genome sequence of Mesorhizobium ciceri bv. biserrulae strain WSM1284, a nitrogen-fixing microsymbiont of the pasture legume Biserrula pelecinus . The genome consists of 6.88 Mb distributed between a single chromosome (6.33 Mb) and a single plasmid (0.55 Mb).


2016 ◽  
Vol 4 (3) ◽  
Author(s):  
Janakiraman Savitha ◽  
S. D. Bhargavi ◽  
V. K. Praveen

We report the complete genome of Aspergillus terreus (KM017963), a tropical soil isolate. The genome sequence is 29 Mb, with a G+C content of 51.12%. The genome sequence of A. terreus shows the presence of the complete gene cluster responsible for lovastatin (an anti-cholesterol drug) production in a single scaffold (1.16).


2019 ◽  
Vol 11 (12) ◽  
pp. 3529-3533
Author(s):  
Pavelas Sazinas ◽  
Morten Lindqvist Hansen ◽  
May Iren Aune ◽  
Marie Højmark Fischer ◽  
Lars Jelsbak

Abstract Many of the soil-dwelling Pseudomonas species are known to produce secondary metabolite compounds, which can have antagonistic activity against other microorganisms, including important plant pathogens. It is thus of importance to isolate new strains of Pseudomonas and discover novel or rare gene clusters encoding bioactive products. In an effort to accomplish this, we have isolated a bioactive Pseudomonas strain DTU12.1 from leaf-covered soil in Denmark. Following genome sequencing with Illumina and Oxford Nanopore technologies, we generated a complete genome sequence with the length of 5,943,629 base pairs. The DTU12.1 strain contained a complete gene cluster for a rare thioquinolobactin siderophore, which was previously described as possessing bioactivity against oomycetes and several fungal species. We placed the DTU12.1 strain within Pseudomonas gessardii subgroup of fluorescent pseudomonads, where it formed a distinct clade with other Pseudomonas strains, most of which also contained a complete thioquinolobactin gene cluster. Only two other Pseudomonas strains were found to contain the gene cluster, though they were present in a different phylogenetic clade and were missing a transcriptional regulator of the whole cluster. We show that having the complete genome sequence and establishing phylogenetic relationships with other strains can enable us to start evaluating the distribution and evolutionary origins of secondary metabolite clusters.


2016 ◽  
Vol 4 (3) ◽  
Author(s):  
Timothy Haskett ◽  
Penghao Wang ◽  
Joshua Ramsay ◽  
Graham O’Hara ◽  
Wayne Reeve ◽  
...  

We report the complete genome sequence of Mesorhizobium ciceri strain CC1192, an efficient nitrogen-fixing microsymbiont of Cicer arietinum (chickpea). The genome consists of 6.94 Mb distributed between a single chromosome (6.29 Mb) and a plasmid (0.65 Mb).


2021 ◽  
Vol 10 (31) ◽  
Author(s):  
Christian Tellgren-Roth ◽  
Kaisa Thorell ◽  
Michael Y. Galperin ◽  
Tino Krell ◽  
Ute Römling ◽  
...  

We report the complete genome sequence and base modification analysis of the Shewanella algae type strain CECT 5071 (= OK-1 = ATCC 51192 = DSM 9167 = IAM 14159). The genome is composed of a single chromosome of 4,924,764 bp, with a GC content of 53.10%.


2021 ◽  
Vol 10 (3) ◽  
Author(s):  
Nikhil Manuel ◽  
Leika Rushing ◽  
Aravind Ravindran ◽  
Heather Newkirk ◽  
Ben Burrowes ◽  
...  

ABSTRACT Rhizobium japonicum is a Gram-negative bacterium of interest for research into nitrogen fixation in legumes. This article describes the isolation, sequencing, and annotation of R. japonicum podophage Pasto. While it shows no significant similarity to identified phages, genomic analysis indicates that Pasto may be temperate and is a novel T7-like podophage.


2021 ◽  
Vol 10 (49) ◽  
Author(s):  
Xinting Lai ◽  
Ying Xu

Halomonas sp. strain NyZ770 is a bacterium that was isolated from Mariana Trench sediment. Here, the complete genome sequence of this strain is reported. The genome was sequenced with the Illumina NovaSeq and Pacific Biosciences Sequel sequencing platforms and consists of a single chromosome of 4,024,853 bp, with a G+C content of 60.21%.


2020 ◽  
Vol 9 (1) ◽  
Author(s):  
Julia A. Bockwoldt ◽  
Martin Zimmermann ◽  
Till Tiso ◽  
Lars M. Blank

Paracoccus spp. are metabolically versatile alphaproteobacteria able to perform heterotrophic and chemoautotrophic growth. This study describes the whole-genome sequence of the Paracoccus pantotrophus type strain DSM 2944 (ATCC 35512, LMD 82.5, GB17). The genome sequence revealed the presence of a complete phaZ phaC phaP phaR gene cluster related to polyhydroxyalkanoate metabolism.


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