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Bugnot, C.

Publications and source records attributed to Bugnot, C..

2 recordsLinked to original sources

Chromoanagenesis is a driver of structural variationin the smallest photosynthetic eukaryote

Marine microalgae populations can rapidly evolve resistance to viruses upon infection. In Ostreococcus mediterraneus resistance to the prasinovirus OmV2 emerged within five days in all virus-exposed populations. Whole-genome sequencing of pairs of resistant and susceptible cell lines revealed extensive structural genomic changes, particularly on the Small Outlier Chromosome (SOC). SOC alterations included large deletions, duplications, rearrangements, and whole chromosome duplication, yet no consistent structural variant or single nucleotide polymorphism could be directly associated with resistance. Hybrid de novo assemblies confirmed the unique SOC assembly of each strain, with a highly polymorphic [~]2 kb tandem repeat region exhibiting an "accordion-like" pattern of expansion and contraction. No new viral insertions were found, though endogenous viral elements were conserved across lines. Two interchromosomal translocations between the SOC and chromosomes 2 and 17 provide evidence for chromoplexy, thereby offering novel insights into the mechanisms underlying the distinctive evolutionary path of this chromosome. Together, these findings demonstrate that resistance to OmV2 evolves rapidly and consistently but cannot yet be linked to any specific structural variations; instead, the high rate of localized genomic structural variations points to a distinct mechanism of chromosome evolution. SignificanceThe mechanisms and consequences of structural variation remain poorly understood in many lineages, particularly in ecologically important marine microbes. This study shows that resistance to prasinovirus OmV2 in a cosmopolitan phytoplankton species, Ostreococcus mediterraneus evolves rapidly and consistently, even though no resistance-associated SNPs or shared structural variants were identified on standard chromosomes. Instead, extensive genomic rearrangements--particularly of a single chromosome--occur independently of viral infection. These findings highlight the role of chromoplexy as the driving mechanism underlying the diversification of the enigmatic Small Outlier Chromosome in this lineage.

genomics↗

Knockout of GMC-oxidoreductase genes reveals functional redundancy in mimivirus

The mimivirus 1.2Mb genome was shown to be organized into a nucleocapsid-like genomic fiber encased in the nucleoid compartment inside the icosahedral capsid (1). The genomic fiber protein shell is composed of a mixture of two GMC-oxidoreductase paralogs, one of them being the main component of the glycosylated layer of fibrils at the surface of the virion (2). In this study, we determined the effect of the deletion of each of the corresponding genes on the genomic fiber and the layer of surface fibrils. First, we deleted the GMC-oxidoreductase the most abundant in the genomic fiber, and determined its structure and composition in the mutant. As expected, it was composed of the second GMC-oxidoreductase and contained 5- and 6-start helices similar to the wild-type fiber. This result led us to propose a model explaining their coexistence. Then, we deleted the GMC-oxidoreductase the most abundant in the layer of fibrils to analyze its protein composition in the mutant. Second, we showed that the fitness of single mutants and the double mutant were not decreased compared to the wild-type viruses in laboratory conditions. Third, we determined that deleting the GMC-oxidoreductase genes did not impact the glycosylation or the glycan composition of the layer of surface fibrils, despite modifying their protein composition. Since the glycosylation machinery and glycan composition of members of different clades are different (3, 4), we expanded the analysis of the protein composition of the layer of fibrils to members of the B and C clades and showed that it was different among the three clades and even among isolates within the same clade. Taken together, the results obtained on two distinct central processes (genome packaging and virion coating) illustrate an unexpected functional redundancy in members of the family Mimiviridae, suggesting this may be the major evolutionary force behind their giant genomes. One-Sentence SummaryFunctional redundancy preserves mimivirus genomic fiber and layer of fibrils formation.

microbiology↗