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Metabolic and stress responses of Acinetobacter oleivorans DR1 during long‐chain alkane degradation

Acinetobacter oleivorans DR1 can utilize C(12)–C(30) alkanes as a sole carbon source but not short‐chain alkanes (C(6), C(10)). Two copies of each alkB‐, almA‐ and ladA‐type alkane hydroxylase (AH) are present in the genome of DR1 cells. Expression and mutational analyses of AHs showed that alkB1 an...

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Autores principales: Park, Chulwoo, Shin, Bora, Jung, Jaejoon, Lee, Yunho, Park, Woojun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5658608/
https://www.ncbi.nlm.nih.gov/pubmed/28857443
http://dx.doi.org/10.1111/1751-7915.12852
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author Park, Chulwoo
Shin, Bora
Jung, Jaejoon
Lee, Yunho
Park, Woojun
author_facet Park, Chulwoo
Shin, Bora
Jung, Jaejoon
Lee, Yunho
Park, Woojun
author_sort Park, Chulwoo
collection PubMed
description Acinetobacter oleivorans DR1 can utilize C(12)–C(30) alkanes as a sole carbon source but not short‐chain alkanes (C(6), C(10)). Two copies of each alkB‐, almA‐ and ladA‐type alkane hydroxylase (AH) are present in the genome of DR1 cells. Expression and mutational analyses of AHs showed that alkB1 and alkB2 are the major AH‐encoding genes under C(12)–C(30), and the roles of other almA‐ and ladA genes are negligible. Our data suggested that AlkB1 is responsible for long‐chain alkane utilization (C(24)–C(26)), and AlkB2 is important for medium‐chain alkane (C(12)–C(16)) metabolism. Phylogenetic analyses revealed large incongruities between phylogenies of 16S rRNA and each AH gene, which implies that A. oleivorans DR1 has acquired multiple alkane hydroxylases through horizontal gene transfer. Transcriptomic and qRT‐PCR analyses suggested that genes participating in the synthesis of siderophore, trehalose and poly 3‐hydroxybutyrate (PHB) were expressed at much higher levels when cells used C(30) than when used succinate as a carbon source. The following biochemical assays supported our gene expression analyses: (i) quantification of siderophore, (ii) measurement of trehalose and (iii) observation of PHB storage. Interestingly, highly induced both ackA gene encoding an acetate kinase A and pta gene encoding a phosphotransacetylase suggested unusual ATP synthesis during C(30) alkane degradation, which was demonstrated by ATP measurement using the ΔackA mutant. Impaired growth of the ΔaceA mutant indicated that the glyoxylate shunt pathway is important when C(30) alkane is utilized. Our data provide insight into long‐chain alkane degradation in soil microorganisms.
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spelling pubmed-56586082017-11-01 Metabolic and stress responses of Acinetobacter oleivorans DR1 during long‐chain alkane degradation Park, Chulwoo Shin, Bora Jung, Jaejoon Lee, Yunho Park, Woojun Microb Biotechnol Research Articles Acinetobacter oleivorans DR1 can utilize C(12)–C(30) alkanes as a sole carbon source but not short‐chain alkanes (C(6), C(10)). Two copies of each alkB‐, almA‐ and ladA‐type alkane hydroxylase (AH) are present in the genome of DR1 cells. Expression and mutational analyses of AHs showed that alkB1 and alkB2 are the major AH‐encoding genes under C(12)–C(30), and the roles of other almA‐ and ladA genes are negligible. Our data suggested that AlkB1 is responsible for long‐chain alkane utilization (C(24)–C(26)), and AlkB2 is important for medium‐chain alkane (C(12)–C(16)) metabolism. Phylogenetic analyses revealed large incongruities between phylogenies of 16S rRNA and each AH gene, which implies that A. oleivorans DR1 has acquired multiple alkane hydroxylases through horizontal gene transfer. Transcriptomic and qRT‐PCR analyses suggested that genes participating in the synthesis of siderophore, trehalose and poly 3‐hydroxybutyrate (PHB) were expressed at much higher levels when cells used C(30) than when used succinate as a carbon source. The following biochemical assays supported our gene expression analyses: (i) quantification of siderophore, (ii) measurement of trehalose and (iii) observation of PHB storage. Interestingly, highly induced both ackA gene encoding an acetate kinase A and pta gene encoding a phosphotransacetylase suggested unusual ATP synthesis during C(30) alkane degradation, which was demonstrated by ATP measurement using the ΔackA mutant. Impaired growth of the ΔaceA mutant indicated that the glyoxylate shunt pathway is important when C(30) alkane is utilized. Our data provide insight into long‐chain alkane degradation in soil microorganisms. John Wiley and Sons Inc. 2017-08-31 /pmc/articles/PMC5658608/ /pubmed/28857443 http://dx.doi.org/10.1111/1751-7915.12852 Text en © 2017 The Authors. Microbial Biotechnology published by John Wiley & Sons Ltd and Society for Applied Microbiology. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Park, Chulwoo
Shin, Bora
Jung, Jaejoon
Lee, Yunho
Park, Woojun
Metabolic and stress responses of Acinetobacter oleivorans DR1 during long‐chain alkane degradation
title Metabolic and stress responses of Acinetobacter oleivorans DR1 during long‐chain alkane degradation
title_full Metabolic and stress responses of Acinetobacter oleivorans DR1 during long‐chain alkane degradation
title_fullStr Metabolic and stress responses of Acinetobacter oleivorans DR1 during long‐chain alkane degradation
title_full_unstemmed Metabolic and stress responses of Acinetobacter oleivorans DR1 during long‐chain alkane degradation
title_short Metabolic and stress responses of Acinetobacter oleivorans DR1 during long‐chain alkane degradation
title_sort metabolic and stress responses of acinetobacter oleivorans dr1 during long‐chain alkane degradation
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5658608/
https://www.ncbi.nlm.nih.gov/pubmed/28857443
http://dx.doi.org/10.1111/1751-7915.12852
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