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Title: A Complex Interplay between Nitric Oxide, Quorum Sensing, and the Unique Secondary Metabolite Tundrenone Constitutes the Hypoxia Response in Methylobacter

Journal Article · · mSystems
 [1]; ORCiD logo [2];  [3];  [2];  [3];  [2]
  1. Central South Univ., Hunan (China); Univ. of Washington, Seattle, WA (United States); DOE/OSTI
  2. Univ. of Washington, Seattle, WA (United States)
  3. Central South Univ., Hunan (China)

Methylobacter species, members of the Methylococcales, have recently emerged as some of the globally widespread, cosmopolitan species that play a key role in the environmental consumption of methane across gradients of dioxygen tensions. In this work, we approached the question of howMethylobacter copes with hypoxia, via laboratory manipulation. Through comparative transcriptomics of cultures grown under high dioxygen partial pressure versus cultures exposed to hypoxia, we identified a gene cluster encoding a hybrid cluster protein along with sensing and regulatory functions. Through mutant analysis, we demonstrated that this gene cluster is involved in the hypoxia stress response. Through additional transcriptomic analyses, we uncovered a complex interconnection between the NO-mediated stress response, quorum sensing, the secondary metabolite tundrenone, and methanol dehydrogenase functions. This novel and complex hypoxia stress response system is so far unique to Methylobacter species, and it may play a role in the environmental fitness of these organisms and in their cosmopolitan environmental distribution.Here, we describe a novel and complex hypoxia response system in a methanotrophic bacterium that involves modules of central carbon metabolism, denitrification, quorum sensing, and a secondary metabolite, tundrenone. This intricate stress response system, so far unique toMethylobacterspecies, may be responsible for the persistence and activity of these species across gradients of dioxygen tensions and for the cosmopolitan distribution of these organisms in freshwater and soil environments in the Northern Hemisphere, including the fast-melting permafrosts.

Research Organization:
Univ. of Washington, Seattle, WA (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES)
Grant/Contract Number:
SC0016224
OSTI ID:
1626185
Journal Information:
mSystems, Journal Name: mSystems Journal Issue: 1 Vol. 5; ISSN 2379-5077
Publisher:
American Society for MicrobiologyCopyright Statement
Country of Publication:
United States
Language:
English

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Methane oxidation in anoxic lake water stimulated by nitrate and sulfate addition journal December 2019
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Dissimilatory Metabolism of Nitrogen Oxides in Bacteria: Comparative Reconstruction of Transcriptional Networks journal January 2005
Hydroxylamine Reductase Activity of the Hybrid Cluster Protein from Escherichia coli text January 2002
Application of Omics Approaches to Studying Methylotrophs and Methylotroph Comunities journal January 2017
Metagenomic Binning Recovers a Transcriptionally Active Gammaproteobacterium Linking Methanotrophy to Partial Denitrification in an Anoxic Oxygen Minimum Zone journal February 2017
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Count-based differential expression analysis of RNA sequencing data using R and Bioconductor text January 2013
Oxygen availability is a major factor in determining the composition of microbial communities involved in methane oxidation journal January 2015