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Fujishima, M.

Publications and source records attributed to Fujishima, M..

3 recordsLinked to original sources

First molecular evidence that perialgal vacuole membrane maturation is temporally regulated during establishment of Chlorella variabilis photoendosymbiosis in Paramecium tritobursaria

Photoendosymbiosis between the ciliate Paramecium tritobursaria and the green alga Chlorella variabilis provides a model for understanding stable photoendosymbiosis. A defining feature of this association is the perialgal vacuole (PV) membrane, a host-derived membrane that encloses each alga and prevents its digestion. However, the timing of PV membrane maturation remains poorly understood because of the lack of molecular markers to distinguish between immature and mature PV membranes. Previous studies have shown that the establishment of symbiosis proceeds through multiple regulated steps following algal uptake; however, the molecular maturation of the PV membrane has not been directly examined. Here, we report a monoclonal antibody that specifically recognizes the PV membrane in symbiotic P. tritobursaria. Time-course immunofluorescence analysis showed that the PV membrane antigen was absent in the early stages after algal uptake, appeared at 48 h, and was detected in all PV membranes by 72 h. The antigen persisted before and after synchronous PV swelling, an experimentally inducible state associated with the loss of normal PV membrane function, but was absent from the membranes surrounding the digested algae. Our findings provide the first molecular evidence that PV membrane maturation is a temporally regulated checkpoint during the establishment of photoendosymbiosis.

cell biology↗

Evolutionary Dynamics of Paramecium Mitochondrial Genomes

Ciliates are a diverse group of single-celled eukaryotes that can exhibit a wide range of genetic diversity within morphologically indistinguishable species. However, they are still not well studied as their mechanisms of speciation and the extent of diversification remain unknown. Mitochondrial genomes offer an effective framework for resolving species relationships and evolutionary changes. Here, we analyzed a globally sampled dataset of Paramecium to understand the evolution of mitochondrial genomes in ciliates. Phylogenetic analysis of linear mitochondrial genomes shows the presence of cryptic diversity beyond the P. aurelia complex, with P. bursaria lineage appearing as a deeply diverging out-group. Protein-coding genes are largely conserved, with limited rearrangements, and some ciliate-specific genes appear to be missing in P. bursaria. Population genetic analysis show little to no evidence of recombination along with substantial differences in effective population size across species. Patterns of molecular evolution also indicate purifying selection as the predominant force, the strength of which is at least as strong as in the nucleus and consistent with mitochondrial effective population sizes that are similar or larger than those of the nucleus. Across the functional groups, the electron transport chain and ribosomal genes are highly constrained, while ciliate-specific ymf genes show reduced efficacy of selection compared to the others. These findings offer a basis for connecting mitochondrial variation to evolutionary divergence, functional constraint, and speciation in microbial eukaryotes.

genomics↗

Shifts in the population-genetic landscape of the ciliate genus Paramecium

Ciliates are one of the most ecologically diverse and morphologically intricate unicellular organisms. Despite their evolutionary significance and their prominence in cell-biological research, the population-genetic processes governing their diversification have received remarkably little attention. A fundamental unresolved problem is the existence of geographic isolation among free-living protists and its consequences for species richness. We addressed this issue in the model ciliate Paramecium by sequencing genomes of hundreds of isolates collected worldwide, capturing multiple morphological and cryptic species, with multiple populations each. Contrary to previous reports, we found evidence of geographic differentiation in the majority of species. In a few cases, geographic structure became evident when deeply diverging clades in a species were treated separately. This suggests that the biogeographical patterns of Paramecium have been shaped by periods of genetic isolation leading to speciation, with rare events of global dispersal realized over its long evolutionary history. Despite being largely isolated, populations were remarkably similar in their effective population size, recombination rate, and efficacy of natural selection. Across species, selection appears to be least effective in Paramecium aurelia lineages, and most effective in P. bursaria, presumably due to differences in their breeding characteristics. Despite differences among species in the population-genetic environment, patterns of variation across the genome remained consistent. Selective constraints on a core set of genes seemed to have gradually diverged across the species phylogeny. Genes with multiple copies retained from whole-genome duplication events in P. aurelia were found to be under relatively relaxed purifying selection. Moving forward, this dataset will serve to test hypotheses on the ecological and cellular complexity of Paramecium and beyond.

evolutionary biology↗