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Complete genome sequence of the phenanthrene-degrading soil bacterium Delftia acidovorans Cs1-4

Polycyclic aromatic hydrocarbons (PAH) are ubiquitous environmental pollutants and microbial biodegradation is an important means of remediation of PAH-contaminated soil. Delftia acidovorans Cs1-4 (formerly Delftia sp. Cs1-4) was isolated by using phenanthrene as the sole carbon source from PAH cont...

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Autores principales: Shetty, Ameesha R., de Gannes, Vidya, Obi, Chioma C., Lucas, Susan, Lapidus, Alla, Cheng, Jan-Fang, Goodwin, Lynne A., Pitluck, Samuel, Peters, Linda, Mikhailova, Natalia, Teshima, Hazuki, Han, Cliff, Tapia, Roxanne, Land, Miriam, Hauser, Loren J., Kyrpides, Nikos, Ivanova, Natalia, Pagani, Ioanna, Chain, Patrick S. G., Denef, Vincent J, Woyke, Tanya, Hickey, William J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4572682/
https://www.ncbi.nlm.nih.gov/pubmed/26380642
http://dx.doi.org/10.1186/s40793-015-0041-x
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author Shetty, Ameesha R.
de Gannes, Vidya
Obi, Chioma C.
Lucas, Susan
Lapidus, Alla
Cheng, Jan-Fang
Goodwin, Lynne A.
Pitluck, Samuel
Peters, Linda
Mikhailova, Natalia
Teshima, Hazuki
Han, Cliff
Tapia, Roxanne
Land, Miriam
Hauser, Loren J.
Kyrpides, Nikos
Ivanova, Natalia
Pagani, Ioanna
Chain, Patrick S. G.
Denef, Vincent J
Woyke, Tanya
Hickey, William J.
author_facet Shetty, Ameesha R.
de Gannes, Vidya
Obi, Chioma C.
Lucas, Susan
Lapidus, Alla
Cheng, Jan-Fang
Goodwin, Lynne A.
Pitluck, Samuel
Peters, Linda
Mikhailova, Natalia
Teshima, Hazuki
Han, Cliff
Tapia, Roxanne
Land, Miriam
Hauser, Loren J.
Kyrpides, Nikos
Ivanova, Natalia
Pagani, Ioanna
Chain, Patrick S. G.
Denef, Vincent J
Woyke, Tanya
Hickey, William J.
author_sort Shetty, Ameesha R.
collection PubMed
description Polycyclic aromatic hydrocarbons (PAH) are ubiquitous environmental pollutants and microbial biodegradation is an important means of remediation of PAH-contaminated soil. Delftia acidovorans Cs1-4 (formerly Delftia sp. Cs1-4) was isolated by using phenanthrene as the sole carbon source from PAH contaminated soil in Wisconsin. Its full genome sequence was determined to gain insights into a mechanisms underlying biodegradation of PAH. Three genomic libraries were constructed and sequenced: an Illumina GAii shotgun library (916,416,493 reads), a 454 Titanium standard library (770,171 reads) and one paired-end 454 library (average insert size of 8 kb, 508,092 reads). The initial assembly contained 40 contigs in two scaffolds. The 454 Titanium standard data and the 454 paired end data were assembled together and the consensus sequences were computationally shredded into 2 kb overlapping shreds. Illumina sequencing data was assembled, and the consensus sequence was computationally shredded into 1.5 kb overlapping shreds. Gaps between contigs were closed by editing in Consed, by PCR and by Bubble PCR primer walks. A total of 182 additional reactions were needed to close gaps and to raise the quality of the finished sequence. The final assembly is based on 253.3 Mb of 454 draft data (averaging 38.4 X coverage) and 590.2 Mb of Illumina draft data (averaging 89.4 X coverage). The genome of strain Cs1-4 consists of a single circular chromosome of 6,685,842 bp (66.7 %G+C) containing 6,028 predicted genes; 5,931 of these genes were protein-encoding and 4,425 gene products were assigned to a putative function. Genes encoding phenanthrene degradation were localized to a 232 kb genomic island (termed the phn island), which contained near its 3’ end a bacteriophage P4-like integrase, an enzyme often associated with chromosomal integration of mobile genetic elements. Other biodegradation pathways reconstructed from the genome sequence included: benzoate (by the acetyl-CoA pathway), styrene, nicotinic acid (by the maleamate pathway) and the pesticides Dicamba and Fenitrothion. Determination of the complete genome sequence of D. acidovorans Cs1-4 has provided new insights the microbial mechanisms of PAH biodegradation that may shape the process in the environment.
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spelling pubmed-45726822015-09-18 Complete genome sequence of the phenanthrene-degrading soil bacterium Delftia acidovorans Cs1-4 Shetty, Ameesha R. de Gannes, Vidya Obi, Chioma C. Lucas, Susan Lapidus, Alla Cheng, Jan-Fang Goodwin, Lynne A. Pitluck, Samuel Peters, Linda Mikhailova, Natalia Teshima, Hazuki Han, Cliff Tapia, Roxanne Land, Miriam Hauser, Loren J. Kyrpides, Nikos Ivanova, Natalia Pagani, Ioanna Chain, Patrick S. G. Denef, Vincent J Woyke, Tanya Hickey, William J. Stand Genomic Sci Extended Genome Report Polycyclic aromatic hydrocarbons (PAH) are ubiquitous environmental pollutants and microbial biodegradation is an important means of remediation of PAH-contaminated soil. Delftia acidovorans Cs1-4 (formerly Delftia sp. Cs1-4) was isolated by using phenanthrene as the sole carbon source from PAH contaminated soil in Wisconsin. Its full genome sequence was determined to gain insights into a mechanisms underlying biodegradation of PAH. Three genomic libraries were constructed and sequenced: an Illumina GAii shotgun library (916,416,493 reads), a 454 Titanium standard library (770,171 reads) and one paired-end 454 library (average insert size of 8 kb, 508,092 reads). The initial assembly contained 40 contigs in two scaffolds. The 454 Titanium standard data and the 454 paired end data were assembled together and the consensus sequences were computationally shredded into 2 kb overlapping shreds. Illumina sequencing data was assembled, and the consensus sequence was computationally shredded into 1.5 kb overlapping shreds. Gaps between contigs were closed by editing in Consed, by PCR and by Bubble PCR primer walks. A total of 182 additional reactions were needed to close gaps and to raise the quality of the finished sequence. The final assembly is based on 253.3 Mb of 454 draft data (averaging 38.4 X coverage) and 590.2 Mb of Illumina draft data (averaging 89.4 X coverage). The genome of strain Cs1-4 consists of a single circular chromosome of 6,685,842 bp (66.7 %G+C) containing 6,028 predicted genes; 5,931 of these genes were protein-encoding and 4,425 gene products were assigned to a putative function. Genes encoding phenanthrene degradation were localized to a 232 kb genomic island (termed the phn island), which contained near its 3’ end a bacteriophage P4-like integrase, an enzyme often associated with chromosomal integration of mobile genetic elements. Other biodegradation pathways reconstructed from the genome sequence included: benzoate (by the acetyl-CoA pathway), styrene, nicotinic acid (by the maleamate pathway) and the pesticides Dicamba and Fenitrothion. Determination of the complete genome sequence of D. acidovorans Cs1-4 has provided new insights the microbial mechanisms of PAH biodegradation that may shape the process in the environment. BioMed Central 2015-08-15 /pmc/articles/PMC4572682/ /pubmed/26380642 http://dx.doi.org/10.1186/s40793-015-0041-x Text en © Shetty et al. 2015 Open Access This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Extended Genome Report
Shetty, Ameesha R.
de Gannes, Vidya
Obi, Chioma C.
Lucas, Susan
Lapidus, Alla
Cheng, Jan-Fang
Goodwin, Lynne A.
Pitluck, Samuel
Peters, Linda
Mikhailova, Natalia
Teshima, Hazuki
Han, Cliff
Tapia, Roxanne
Land, Miriam
Hauser, Loren J.
Kyrpides, Nikos
Ivanova, Natalia
Pagani, Ioanna
Chain, Patrick S. G.
Denef, Vincent J
Woyke, Tanya
Hickey, William J.
Complete genome sequence of the phenanthrene-degrading soil bacterium Delftia acidovorans Cs1-4
title Complete genome sequence of the phenanthrene-degrading soil bacterium Delftia acidovorans Cs1-4
title_full Complete genome sequence of the phenanthrene-degrading soil bacterium Delftia acidovorans Cs1-4
title_fullStr Complete genome sequence of the phenanthrene-degrading soil bacterium Delftia acidovorans Cs1-4
title_full_unstemmed Complete genome sequence of the phenanthrene-degrading soil bacterium Delftia acidovorans Cs1-4
title_short Complete genome sequence of the phenanthrene-degrading soil bacterium Delftia acidovorans Cs1-4
title_sort complete genome sequence of the phenanthrene-degrading soil bacterium delftia acidovorans cs1-4
topic Extended Genome Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4572682/
https://www.ncbi.nlm.nih.gov/pubmed/26380642
http://dx.doi.org/10.1186/s40793-015-0041-x
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