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van Dillewijn, P.

Publications and source records attributed to van Dillewijn, P..

2 recordsLinked to original sources

The effect of Sinorhizobium meliloti volatilomes and synthetic long-chain methylketones on soil and Medicago truncatula microbiomes

Bacterial volatile compounds play important roles in intra- and interkingdom interactions but very little is known about their effects on soil and plant microbiomes. The legume symbiont Sinorhizobium meliloti (Sm) releases volatile methylketones (MKs), one of which acts as an infochemical in bacteria and hampers plant-bacteria interactions. MK production in Sm is modestly increased in the absence of the long-chain-fatty-acyl-coenzyme-A (CoA) synthetase FadD. To explore further the ecological role of MKs on soil and plant bacterial communities, we aimed at obtaining an MK-overproducer Sm strain by deleting the 3-oxo-acyl-CoA-thiolase-encoding fadA gene. Analyses of the Sm wild type (wt), and fad mutant volatilomes identified seventeen compounds consisting mostly of MKs and fatty acid methyl esters (FAMEs) and revealed that the fadA mutant produced more MKs than the fadD mutant and much more than the wt, while in the fadD mutant FAME emission was increased. When natural soil or the rhizosphere of Medicago truncatula were exposed to wt and fadA volatilomes or synthetic MKs, bacterial alpha- or beta-diversity were not strongly affected but specific genera were identified which responded differentially to each condition. Interestingly, Sm volatilomes had a significant effect on root endosphere Ensifer/Sinorhizobium populations by maintaining their abundance over time in contrast to control conditions or exposure to synthetic MKs. This study provides new insights on the synthesis of rhizobial volatile compounds and represents the first exploration of the effects of bacterial volatilomes on plant bacterial communities, contributing to increase our knowledge on the complex molecular bases underlying plant-bacteria interactions.

microbiology↗

Effect of diesel contamination on bacterial populations in a pristine soil during rhizoremediation

Background and aimsContamination of soils with hydrocarbons such as diesel is of major concern as use and transport increases. In order to obtain a better understanding of how soil microorganisms face diesel during rhizoremediation of a natural soil will help us improve remediation processes. MethodsWe conducted microcosm experiments with a pristine soil contaminated or not with diesel and planted with clover, clover/ryegrass or non-planted controls. We measured the aromatic fraction of diesel by HPLC-DAD along time under the different experimental conditions and determined the bacterial communities in soil and the rhizosphere by amplicon sequencing of the 16S rRNA gene. ResultsThe presence of clover accelerates the disappearance of the aromatic components of diesel but not significantly so. The bacterial diversity is lowered by diesel contamination although this decline is mitigated by the presence of plants. Bacterial community structure is mostly affected by soil type and then by diesel contamination. Actinobacteriota and Gemmatimonadota decline while Firmicutes, Bacteroidota and Proteobacteria increase with diesel contamination and in the rhizosphere. Amplified sequence variants (ASVs) belonging to Novosphingobium and Sphingomonas are especially abundant in diesel contaminated bulk soil and ASVs belonging to Azospirillum, Rhizobium, Ohtaekwangia Faecalibacterium, and Subdoligranulum are especially abundant in diesel contaminated rhizosphere. ConclusionClover helps dissipate diesel aromatic compounds faster from a pristine soil. Clover and ryegrass mitigate the decline of bacterial diversity in soil due to diesel contamination and certain bacterial taxa which are enriched with the contaminant are identified which may play a role to remediate diesel contamination.

microbiology↗