Genomics of Aerobic Photoheterotrophs in Wheat Phyllosphere Reveals Divergent Evolutionary Patterns of Photosynthetic Genes in Methylobacterium spp.

Genome Biol Evol

Section of Environmental Microbiology and Biotechnology, Department of Environmental Science, Aarhus University, Roskilde, Denmark.

Published: October 2019

AI Article Synopsis

  • The phyllosphere is home to various microorganisms critical for plant health, including a newly identified group of bacteria called aerobic anoxygenic phototrophs (AAPs), which produce energy without carbon fixation or oxygen release.
  • In a study conducted on winter wheat in Denmark, researchers used advanced imaging and mass spectrometry techniques to identify and isolate 129 AAP strains from around 4,480 colonies screened for a particular pigment, bacteriochlorophyll α.
  • Subsequently, they sequenced the genomes of these isolates, discovering 17 draft and 4 complete genomes across genera like Methylobacterium and Rhizobium, revealing ongoing evolutionary changes in genes related to photosynthesis among similar AAP strains.

Article Abstract

Phyllosphere is a habitat to a variety of viruses, bacteria, fungi, and other microorganisms, which play a fundamental role in maintaining the health of plants and mediating the interaction between plants and ambient environments. A recent addition to this catalogue of microbial diversity was the aerobic anoxygenic phototrophs (AAPs), a group of widespread bacteria that absorb light through bacteriochlorophyll α (BChl a) to produce energy without fixing carbon or producing molecular oxygen. However, culture representatives of AAPs from phyllosphere and their genome information are lacking, limiting our capability to assess their potential ecological roles in this unique niche. In this study, we investigated the presence of AAPs in the phyllosphere of a winter wheat (Triticum aestivum L.) in Denmark by employing bacterial colony based infrared imaging and MALDI-TOF mass spectrometry (MS) techniques. A total of ∼4,480 colonies were screened for the presence of cellular BChl a, resulting in 129 AAP isolates that were further clustered into 21 groups based on MALDI-TOF MS profiling, representatives of which were sequenced using the Illumina NextSeq and Oxford Nanopore MinION platforms. Seventeen draft and four complete genomes of AAPs were assembled belonging in Methylobacterium, Rhizobium, Roseomonas, and a novel Alsobacter. We observed a diverging pattern in the evolutionary rates of photosynthesis genes among the highly homogenous AAP strains of Methylobacterium (Alphaproteobacteria), highlighting an ongoing genomic innovation at the gene cluster level.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6798729PMC
http://dx.doi.org/10.1093/gbe/evz204DOI Listing

Publication Analysis

Top Keywords

aaps phyllosphere
8
genomics aerobic
4
aerobic photoheterotrophs
4
photoheterotrophs wheat
4
phyllosphere
4
wheat phyllosphere
4
phyllosphere reveals
4
reveals divergent
4
divergent evolutionary
4
evolutionary patterns
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!