Search bioRxiv⌕ Search

Biology subjects

Caullireau, E.

Publications and source records attributed to Caullireau, E..

3 recordsLinked to original sources

Persistent trade-offs balance competition and colonization across centuries

Microbial competition drives rapid adaptation, often forcing organisms to specialize in new ecological niches. Adaptations that improve competitive ability can reduce performance in other environments creating trade-offs. Whether such trade-offs persist in nature--or are eroded as lineages adapt through compensatory changes--remains largely unknown. Here we show that a trade-off between competitive ability and host colonization has been stably maintained in natural Pseudomonas populations for centuries. Wild plant-pathogenic Pseudomonas compete using tailocins--phage-derived molecular weapons that bind to specific cell-surface receptors. Genomic surveys and functional assays reveal that the most broadly lethal tailocins remain rare--while the tailocins production increases competitive killing, it also compromises plant colonization. We determine that the polymorphisms behind this trade-off are not transient -- historical genomes spanning two centuries show that the trade-off has been maintained for at least 10-10 generations. Our results demonstrate that, in natural populations, a trade-off between competition and pathogenicity is fundamental and not easily overcome. SignificanceWhen a microbe colonizes a host, it must both establish infection and outcompete other organisms. Short-term experiments show that gains in competitive ability can reduce colonization, creating trade-offs, but whether microbes resolve these conflicts over long evolutionary timescales is unknown. We show that a trade-off between competitive killing and host colonization has been stably maintained for centuries in natural Pseudomonas populations infecting Arabidopsis thaliana. Tailocins--phage-derived weapons--provide strong competitive advantages, yet their production reduces colonization success, explaining why the most broadly lethal variants remain rare. Genomic surveys and historical genomes spanning two centuries reveal that the polymorphisms underlying this trade-off have persisted across 10-10 generations. Understanding such long-lived constraints can inform antimicrobial strategies that exploit evolutionary trade-offs.

evolutionary biology↗

Some like it hot: efficiency of the Type 3 Secretion System and activation of plant defenses have multiple thermosensitive behaviors in the Pseudomonas syringae complex

The Pseudomonas syringae complex is an important group of ubiquitous bacteria containing plant pathogenic strains of which many cause damage and economic losses to a wide range of crops. Efforts to elucidate the determinants of host range have focused on the repertoires of effectors in the Type 3 Secretion System (T3SS). However, recently, we showed that the inability of a P. syringae pv. actinidiae strain to trigger an hypersensitive response (HR) in A. thaliana is due to an inefficient T3SS and not to the absence of a recognized effector. In this context, we compared the efficiency of the T3SS of several P. syringae strains belonging to different phylogroups. Through statistical analysis, we assessed the temporal dynamics of the induction of ion leakage, an HR indicator, in A. thaliana. We revealed that PtoDC3000 avrB and PmaM6 avrB consistently triggered a strong HR while other strains induced it at significantly different intensities depending on temperature. Among thermosensitive strains, both low and warm temperature-dependencies for T3SS efficiency were observed, irrespective of the in-vitro growth optimum of the strains. Surprisingly, differences were also observed among quasi-clonal strains. These results reveal a strong, strain-specific regulatory role of temperature in effector injection and reinforce the importance of environmental factors in the outcome of plant-bacteria interactions. Moreover, this work highlights the need to study bacterial virulence for a broader set of strains beyond model strains, such as PtoDC3000, that are not representative of the whole P. syringae complex.

microbiology↗

From lichens to crops: Pathogenic potential of Pseudomonas syringae from Peltigera lichens is similar to world-wide epidemic strains

The presence of bacteria belonging to the Pseudomonas syringae complex (P. syringae) in the natural vegetation of several Icelandic habitat types has been recently reported, raising questions about the risk to Icelandic crops, particularly given the expected increase in agricultural activity due to climate warming. This study takes advantage of Icelands unique characteristics and the discovery of P. syringae in Peltigera lichens to gain a better understanding of the potential risk posed by this newly discovered ecological niche. The main objective is to evaluate the pathogenic potential and fitness in crops of P. syringae strains isolated from Peltigera lichen sampled in Iceland, focusing on strains that belong to phylogroups 1 and 2, which commonly contain epidemic strains. The results indicate that P. syringae isolated from Icelandic Peltigera lichen have a comparable fitness to epidemic strains in eight out of ten tested plant species. Furthermore, pathogenicity assessment on three plant species highlighted that certain strains also caused similar symptoms and disease severity compared to epidemic strains. These findings provide valuable insights into the potential risks posed by P. syringae from Icelandic natural habitats and illustrate how strains from these habitats have a wide pathogenic potential to crops without having encountered these crops in the last several thousand years of their presence in Iceland.

microbiology↗