Next Article in Journal
Metabolic Features of Aerobic Methanotrophs: News and Views
Previous Article in Journal
Diversity of Methane-Cycling Microorganisms in Soils and Their Relation to Oxygen
 
 
Current Issues in Molecular Biology is published by MDPI from Volume 43 Issue 1 (2021). Previous articles were published by another publisher in Open Access under a CC-BY (or CC-BY-NC-ND) licence, and they are hosted by MDPI on mdpi.com as a courtesy and upon agreement with Caister Press.
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Review

Metagenomic Approaches Unearth Methanotroph Phylogenetic and Metabolic Diversity

by
Garrett J. Smith
1,* and
Kelly C. Wrighton
1,2,*
1
Department of Microbiology, The Ohio State University, Columbus, OH, USA
2
Department of Soil and Crop Science, Colorado State University, Fort Collins, CO, USA
*
Authors to whom correspondence should be addressed.
Curr. Issues Mol. Biol. 2019, 33(1), 57-84; https://doi.org/10.21775/cimb.033.057
Submission received: 5 March 2019 / Revised: 9 April 2019 / Accepted: 6 May 2019 / Published: 5 June 2019

Abstract

Methanotrophic microorganisms utilize methane as an electron donor and a carbon source. To date, the capacity to oxidize methane is restricted to microorganisms from three bacterial and one archaeal phyla. Most of our knowledge of methanotrophic metabolism has been obtained using highly enriched or pure cultures grown in the laboratory. However, many methanotrophs currently evade cultivation, thus metagenomics provides a complementary approach for gaining insight into currently unisolated microorganisms. Here we synthesize the studies using metagenomics to glean information about methanotrophs. We complement this summary with an analysis of methanotroph marker genes from 235 publically available metagenomic datasets. We analyze the phylogenetic and environmental distribution of methanotrophs sampled by metagenomics. We also highlight metabolic insights that methanotroph genomes assembled from metagenomes are illuminating. In summary, metagenomics has increased methanotrophic foliage within the tree of life, as well as provided new insights into methanotroph metabolism, which collectively can guide new cultivation efforts. Lastly, given the importance of methanotrophs for biotechnological applications and their capacity to filter greenhouse gases from a variety of ecosystems, metagenomics will continue to be an important component in the arsenal of tools needed for understanding methanotroph diversity and metabolism in both engineered and natural systems.

Share and Cite

MDPI and ACS Style

Smith, G.J.; Wrighton, K.C. Metagenomic Approaches Unearth Methanotroph Phylogenetic and Metabolic Diversity. Curr. Issues Mol. Biol. 2019, 33, 57-84. https://doi.org/10.21775/cimb.033.057

AMA Style

Smith GJ, Wrighton KC. Metagenomic Approaches Unearth Methanotroph Phylogenetic and Metabolic Diversity. Current Issues in Molecular Biology. 2019; 33(1):57-84. https://doi.org/10.21775/cimb.033.057

Chicago/Turabian Style

Smith, Garrett J., and Kelly C. Wrighton. 2019. "Metagenomic Approaches Unearth Methanotroph Phylogenetic and Metabolic Diversity" Current Issues in Molecular Biology 33, no. 1: 57-84. https://doi.org/10.21775/cimb.033.057

APA Style

Smith, G. J., & Wrighton, K. C. (2019). Metagenomic Approaches Unearth Methanotroph Phylogenetic and Metabolic Diversity. Current Issues in Molecular Biology, 33(1), 57-84. https://doi.org/10.21775/cimb.033.057

Article Metrics

Back to TopTop