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Abbriano, R. M.

Publications and source records attributed to Abbriano, R. M..

3 recordsLinked to original sources

Real time mobilization of a novel diatom Mutator-Like Element (MULE) transposon to inactivate the uridine monophosphate synthase (UMPS) locus in Phaeodactylum tricornutum

Diatoms are photosynthetic unicellular microalgae that drive global ecological phenomena in the biosphere and are emerging sustainable feedstock for an increasing number of industrial applications. Diatoms exhibit enormous taxonomic and genetic diversity, which often result in peculiar biochemical and biological traits. Transposable elements (TE) represent a substantial portion of diatom genomes and have been hypothesized to exert a relevant role in enriching genetic diversity and centrally contribute to genome evolution. Here, through long-read whole genome sequencing, we identified a novel Mutator-Like Element (MULE) in the model diatom Phaeodactylum tricornutum, and we report the direct observation of its mobilization within the course of one single laboratory experiment. Under selective conditions, this novel TE inactivated the uridine monophosphate synthase (UMPS) gene of P. tricornutum, one of the two only endogenous genetic loci currently targeted for selectable auxotrophy in functional genetics and genome editing applications. We report the first, real-time observation of the mobilization of a transposon in diatoms that possesses novel peculiar features. These include the combined presence of a MULE transposase domain with Zinc finger, SWIM-type domains, and of a diatom-specific E3 ubiquitin ligase of the zinc finger UBR type, which indicate a novel mobilization mechanism. Our findings provide new elements for the understanding of the role of TEs in diatom genome evolution and in the enrichment of intraspecific genetic variability. Ultimately, this raises relevant concerns on the targeting of loci such as UMPS as selectable markers for functional genetics and biotechnological applications in diatoms. Significance StatementWe identified a novel DNA transposon in the diatom Phaeodactylum tricornutum. This new Mutator-Like Element encodes a transposase and a diatom-specific E3 ubiquitin ligase, which suggest a novel mobilization mechanism. We documented independent insertions in real-time, which spontaneously inactivated the uridine monophosphate synthase (UMPS) locus, a common selectable marker. We provide new insights on the role of transposons in diatom genome dynamics and evolution and on the unsuitability of UMPS as selection locus in diatoms.

molecular biology↗

A proton pump enhancing photosynthesis links phagocytosis to marine phytoplankton symbiogenesis

Diatoms, dinoflagellates, and coccolithophorids are the dominant groups of marine eukaryotic phytoplankton collectively responsible for the majority of primary production in the ocean1. These phytoplankton contain additional intracellular membranes around their chloroplasts derived from ancestral engulfment of red microalgae by unicellular heterotrophic eukaryotes that led to secondary endosymbiosis2. This symbiogenesis hypothesis for the origin of modern secondary endosymbiotic phytoplankton is supported by a wealth of palaeontologic, morphologic, and genomic evidence3-6. However, the selectable evolutionary advantage of these membranes and the physiological significance for extant phytoplankton are unknown. We report that the proton-pumping enzyme V-type H+-ATPase (VHA), ubiquitously used in eukaryotic intercellular digestion, is localized around the chloroplasts of centric diatoms and that VHA-activity significantly enhances photosynthesis over a wide range of oceanic irradiances. Similar results in pennate diatoms, dinoflagellates, and coccolithophorids, but not green or red microalgae, imply a mechanism resulting from the co-option of phagocytic VHA activity into a carbon concentrating mechanism that is common to secondary endosymbiotic phytoplankton. Furthermore, analogous VHA-dependent mechanisms in extant photosymbiotic marine invertebrates7-9 provide functional evidence for an adaptive advantage throughout the transition from endosymbiosis to symbiogenesis. Our results suggest that VHA-dependent enhancement of photosynthesis contributes at least 7% of primary production in the ocean, providing an example of a symbiosis-derived evolutionary innovation with global environmental implications.

evolutionary biology↗

Whole-genome duplication in an algal symbiont serendipitously confers thermal tolerance to corals

The algal endosymbiont Durusdinium trenchii enhances the resilience of coral reefs under thermal stress1,2. As an endosymbiont, D. trenchii is generally expected to have a reduced genome compared to its free-living relatives, due in part to the lack of selective pressure for maintaining redundant gene functions in a stable intracellular environment within the host3. However, D. trenchii can live freely or in endosymbiosis, and the analysis of genetic markers4 suggests that this species has undergone whole-genome duplication (WGD). Here we present genome assemblies for two D. trenchii isolates, confirm WGD in these taxa, and examine how selection has shaped the duplicated genome regions. We assess how the competing free-living versus endosymbiotic lifestyles of D. trenchii have contributed to the retention and divergence of duplicated genes, and how these processes have enhanced thermotolerance of corals hosting these symbionts. We find that lifestyle is the driver of post-WGD evolution in D. trenchii, with the free-living phase being most important, followed by endosymbiosis. Adaptations to both lifestyles collectively result in increased cellular fitness for D. trenchii, which provides enhanced thermal stress protection to the host coral. Beyond corals, this polyploid alga is a valuable model for understanding how genome-wide selective forces act to balance the often, divergent constraints imposed by competing lifestyles.

genomics↗