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Oeltjen, M.

Publications and source records attributed to Oeltjen, M..

2 recordsLinked to original sources

Comparative genomics of epiphytic and endophytic bacterial culture collections from Arabidopsis thaliana in Otautahi (Christchurch), Aotearoa New Zealand

Bacterial culture collections are essential resources for exploring the diversity of microorganisms and their interactions with each other and their hosts. Here, we report on the sequencing of the first 129 bacterial isolates, representing 34 genera, from a culture collection of more than 600 bacterial strains originally isolated from leaves of a naturalised Arabidopsis thaliana population from [O]tautahi (Christchurch), Aotearoa New Zealand. Epiphytic (leaf surface), and endophytic (apoplastic) bacteria were isolated separately from the same leaves, providing complementary insights into both compartments. The recovered isolates encompass the dominant taxa typically associated with the Arabidopsis phyllosphere, including Pseudomonas, Sphingomonas, Methylobacterium, and Flavobacterium. Their full genome assemblies (BUSCO average completeness > 99%, checkM average completeness > 97% and average contamination < 1%) were analysed and compared to assess genomic features across epiphytic and endophytic lineages. While the epiphytic and endophytic strain collections did not show large genomic differences, certain functional categories differ, such as terpene biosynthesis and biofilm formation being enriched in epiphytic strains, while arginine biosynthesis and carbohydrate degradation were associated with endophytic strains. These data provide a genomic foundation for future experimental work on leaf-associated microbial ecology and plant-microbe interactions. To our knowledge, this is the first Arabidopsis leaf culture collection established from a Southern Hemisphere source.

microbiology↗

The alkane 1-monooxigenase gene alkB of Pseudomonas sp. FF2 is upregulated during colonisation of Arabidopsis thaliana leaves

Bacteria on leaf surfaces encounter highly variable access to nutrients and water. This oligotrophic environment is partly due to the presence of cuticular waxes that render the leaf surface hydrophobic, reducing the leaching of nutrients and water loss from inside the leaf. Bacteria have evolved adaptations to survive under these conditions. While alkB, an alkane hydroxylase gene, is widely prevalent in leaf-associated bacteria, its role and activity is unclear. Here, we developed a bioreporter in Pseudomonas sp. FF2 (PFF2) to investigate alkB promoter activity in diesel and on Arabidopsis thaliana leaves. In general, alkB promoter activity is highly heterogeneous, with a subpopulation exhibiting strong activation, suggesting bet-hedging in alkane metabolism. In planta, the promoter remained active over the course of seven days, indicating constant access of alkanes over time. Single-cell fluorescence intensity was heterogeneous, reflecting differences in microhabitats on the leaf surface or bet-hedging. While our results support a role of alkB in bacterial adaptation to the phyllosphere, direct evidence of cuticular wax degradation is missing. Future studies should trace the incorporation of plant-derived aliphatic compounds to elucidate the potential use of alkanes and other aliphatic compounds as resources for bacteria in the leaf environment.

microbiology↗