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Grujcic, V., Mehrshad, M., Vigil-Stenman, T., Lundin, D. & Foster, R. A. (2025). Stepwise genome evolution from a facultative symbiont to an endosymbiont in the N2-fixing diatom-Richelia symbioses. Current Biology, 35(18), 4479-4493
Open this publication in new window or tab >>Stepwise genome evolution from a facultative symbiont to an endosymbiont in the N2-fixing diatom-Richelia symbioses
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2025 (English)In: Current Biology, ISSN 0960-9822, E-ISSN 1879-0445, Vol. 35, no 18, p. 4479-4493Article in journal (Refereed) Published
Abstract [en]

A few genera of diatoms that form stable partnerships with N2-fixing filamentous cyanobacteria Richelia spp. are widespread in the open ocean. A unique feature of the diatom-Richelia symbioses is the symbiont cellular location spans a continuum of integration (epibiont, periplasmic, and endobiont) that is reflected in the symbiont genome size and content. In this study, we analyzed genomes derived from cultures and environmental metagenome-assembled genomes of Richelia symbionts, focusing on characters indicative of genome evolution. Our results show an enrichment of short-length transposases and pseudogenes in the periplasmic symbiont genomes, suggesting an active and transitionary period in genome evolution. By contrast, genomes of endobionts exhibited fewer transposases and pseudogenes, reflecting advanced stages of genome reduction. Pangenome analyses identified that endobionts streamline their genomes and retain most genes in the core genome, whereas periplasmic symbionts and epibionts maintain larger flexible genomes, indicating higher genomic plasticity compared with the genomes of endobionts. Functional gene comparisons with other N2-fixing cyanobacteria revealed that Richelia endobionts have similar patterns of metabolic loss but are distinguished by the absence of specific pathways (e.g., cytochrome bd ubiquinol oxidase and lipid A) that increase both dependency and direct interactions with their respective hosts. In conclusion, our findings underscore the dynamic nature of genome reduction in N2-fixing cyanobacterial symbionts and demonstrate the diatom-Richelia symbioses as a valuable and rare model to study genome evolution in the transitional stages from a free-living facultative symbiont to a host-dependent endobiont.

Keywords
endobiont, GC content, genome evolutionc, intergenic spacer, MAG, pangenome, periplasmic, Richelia spp., symbiosis, transposase
National Category
Genetics and Genomics
Identifiers
urn:nbn:se:su:diva-247944 (URN)10.1016/j.cub.2025.08.003 (DOI)001579269000001 ()40885195 (PubMedID)2-s2.0-105017048800 (Scopus ID)
Available from: 2025-10-10 Created: 2025-10-10 Last updated: 2025-10-10Bibliographically approved
Mukherjee, I., Grujčić, V., Salcher, M. M., Znachor, P., Seďa, J., Devetter, M., . . . Shabarova, T. (2024). Integrating depth-dependent protist dynamics and microbial interactions in spring succession of a freshwater reservoir. Environmental Microbiome, 19, Article ID 31.
Open this publication in new window or tab >>Integrating depth-dependent protist dynamics and microbial interactions in spring succession of a freshwater reservoir
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2024 (English)In: Environmental Microbiome, E-ISSN 2524-6372, Vol. 19, article id 31Article in journal (Refereed) Published
Abstract [en]

Background Protists are essential contributors to eukaryotic diversity and exert profound influence on carbon fluxes and energy transfer in freshwaters. Despite their significance, there is a notable gap in research on protistan dynamics, particularly in the deeper strata of temperate lakes. This study aimed to address this gap by integrating protists into the well-described spring dynamics of Římov reservoir, Czech Republic. Over a 2-month period covering transition from mixing to established stratification, we collected water samples from three reservoir depths (0.5, 10 and 30 m) with a frequency of up to three times per week. Microbial eukaryotic and prokaryotic communities were analysed using SSU rRNA gene amplicon sequencing and dominant protistan groups were enumerated by Catalysed Reporter Deposition-Fluorescence in situ Hybridization (CARD-FISH). Additionally, we collected samples for water chemistry, phyto- and zooplankton composition analyses.

Results Following the rapid changes in environmental and biotic parameters during spring, protistan and bacterial communities displayed swift transitions from a homogeneous community to distinct strata-specific communities. A prevalence of auto- and mixotrophic protists dominated by cryptophytes was associated with spring algal bloom-specialized bacteria in the epilimnion. In contrast, the meta- and hypolimnion showcased a development of a protist community dominated by putative parasitic Perkinsozoa, detritus or particle-associated ciliates, cercozoans, telonemids and excavate protists (Kinetoplastida), co-occurring with bacteria associated with lake snow.

Conclusions Our high-resolution sampling matching the typical doubling time of microbes along with the combined microscopic and molecular approach and inclusion of all main components of the microbial food web allowed us to unveil depth-specific populations’ successions and interactions in a deep lentic ecosystem.

Keywords
18S and 16S amplicon sequencing, CARD-FISH, Freshwater, Microbial food webs, Protists, Epilimnion, Metalimnion, Hypolimnion, Spring succession
National Category
Microbiology Oceanography, Hydrology and Water Resources
Identifiers
urn:nbn:se:su:diva-229292 (URN)10.1186/s40793-024-00574-5 (DOI)001216151600001 ()38720385 (PubMedID)2-s2.0-85192542071 (Scopus ID)
Available from: 2024-05-22 Created: 2024-05-22 Last updated: 2024-05-22Bibliographically approved
Grujčić, V., Saarenpää, S., Sundh, J., Sennblad, B., Norgren, B., Latz, M., . . . Andersson, A. F. (2024). Towards high-throughput parallel imaging and single-cell transcriptomics of microbial eukaryotic plankton. PLOS ONE, 19(1), Article ID e0296672.
Open this publication in new window or tab >>Towards high-throughput parallel imaging and single-cell transcriptomics of microbial eukaryotic plankton
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2024 (English)In: PLOS ONE, E-ISSN 1932-6203, Vol. 19, no 1, article id e0296672Article in journal (Refereed) Published
Abstract [en]

Single-cell transcriptomics has the potential to provide novel insights into poorly studied microbial eukaryotes. Although several such technologies are available and benchmarked on mammalian cells, few have been tested on protists. Here, we applied a microarray single-cell sequencing (MASC-seq) technology, that generates microscope images of cells in parallel with capturing their transcriptomes, on three species representing important plankton groups with different cell structures; the ciliate Tetrahymena thermophila, the diatom Phaeodactylum tricornutum, and the dinoflagellate Heterocapsa sp. Both the cell fixation and permeabilization steps were adjusted. For the ciliate and dinoflagellate, the number of transcripts of microarray spots with single cells were significantly higher than for background spots, and the overall expression patterns were correlated with that of bulk RNA, while for the much smaller diatom cells, it was not possible to separate single-cell transcripts from background. The MASC-seq method holds promise for investigating "microbial dark matter”, although further optimizations are necessary to increase the signal-to-noise ratio.

National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:su:diva-228658 (URN)10.1371/journal.pone.0296672 (DOI)001150526800053 ()38241213 (PubMedID)2-s2.0-85182856467 (Scopus ID)
Available from: 2024-04-26 Created: 2024-04-26 Last updated: 2024-04-26Bibliographically approved
Kavagutti, V. S. S., Bulzu, P.-A., Chiriac, C. M. M., Salcher, M. M. M., Mukherjee, I., Shabarova, T., . . . Ghai, R. (2023). High-resolution metagenomic reconstruction of the freshwater spring bloom. Microbiome, 11(1), Article ID 15.
Open this publication in new window or tab >>High-resolution metagenomic reconstruction of the freshwater spring bloom
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2023 (English)In: Microbiome, E-ISSN 2049-2618, Vol. 11, no 1, article id 15Article in journal (Refereed) Published
Abstract [en]

Background The phytoplankton spring bloom in freshwater habitats is a complex, recurring, and dynamic ecological spectacle that unfolds at multiple biological scales. Although enormous taxonomic shifts in microbial assemblages during and after the bloom have been reported, genomic information on the microbial community of the spring bloom remains scarce.Results We performed a high-resolution spatio-temporal sampling of the spring bloom in a freshwater reservoir and describe a multitude of previously unknown taxa using metagenome-assembled genomes of eukaryotes, prokaryotes, and viruses in combination with a broad array of methodologies. The recovered genomes reveal multiple distributional dynamics for several bacterial groups with progressively increasing stratification. Analyses of abundances of metagenome-assembled genomes in concert with CARD-FISH revealed remarkably similar in situ doubling time estimates for dominant genome-streamlined microbial lineages. Discordance between quantitations of cryptophytes arising from sequence data and microscopic identification suggested the presence of hidden, yet extremely abundant aplastidic cryptophytes that were confirmed by CARD-FISH analyses. Aplastidic cryptophytes are prevalent throughout the water column but have never been considered in prior models of plankton dynamics. We also recovered the first metagenomic-assembled genomes of freshwater protists (a diatom and a haptophyte) along with thousands of giant viral genomic contigs, some of which appeared similar to viruses infecting haptophytes but owing to lack of known representatives, most remained without any indication of their hosts. The contrasting distribution of giant viruses that are present in the entire water column to that of parasitic perkinsids residing largely in deeper waters allows us to propose giant viruses as the biological agents of top-down control and bloom collapse, likely in combination with bottom-up factors like a nutrient limitation.Conclusion We reconstructed thousands of genomes of microbes and viruses from a freshwater spring bloom and show that such large-scale genome recovery allows tracking of planktonic succession in great detail. However, integration of metagenomic information with other methodologies (e.g., microscopy, CARD-FISH) remains critical to reveal diverse phenomena (e.g., distributional patterns, in situ doubling times) and novel participants (e.g., aplastidic cryptophytes) and to further refine existing ecological models (e.g., factors affecting bloom collapse). This work provides a genomic foundation for future approaches towards a fine-scale characterization of the organisms in relation to the rapidly changing environment during the course of the freshwater spring bloom.

National Category
Ecology
Identifiers
urn:nbn:se:su:diva-230014 (URN)10.1186/s40168-022-01451-4 (DOI)001003341100001 ()36698172 (PubMedID)2-s2.0-85146894403 (Scopus ID)
Available from: 2024-06-03 Created: 2024-06-03 Last updated: 2024-06-03Bibliographically approved
Grujcic, V., Taylor, G. T. & Foster, R. A. (2022). One Cell at a Time: Advances in Single-Cell Methods and Instrumentation for Discovery in Aquatic Microbiology. Frontiers in Microbiology, 13, Article ID 881018.
Open this publication in new window or tab >>One Cell at a Time: Advances in Single-Cell Methods and Instrumentation for Discovery in Aquatic Microbiology
2022 (English)In: Frontiers in Microbiology, E-ISSN 1664-302X, Vol. 13, article id 881018Article in journal (Refereed) Published
Abstract [en]

Studying microbes from a single-cell perspective has become a major theme and interest within the field of aquatic microbiology. One emerging trend is the unfailing observation of heterogeneity in activity levels within microbial populations. Wherever researchers have looked, intra-population variability in biochemical composition, growth rates, and responses to varying environmental conditions has been evident and probably reflect coexisting genetically distinct strains of the same species. Such observations of heterogeneity require a shift away from bulk analytical approaches and development of new methods or adaptation of existing techniques, many of which were first pioneered in other, unrelated fields, e.g., material, physical, and biomedical sciences. Many co-opted approaches were initially optimized using model organisms. In a field with so few cultivable models, method development has been challenging but has also contributed tremendous insights, breakthroughs, and stimulated curiosity. In this perspective, we present a subset of methods that have been effectively applied to study aquatic microbes at the single-cell level. Opportunities and challenges for innovation are also discussed. We suggest future directions for aquatic microbiological research that will benefit from open access to sophisticated instruments and highly interdisciplinary collaborations.

Keywords
mass spectrometry imaging, Raman microspectroscopy, single-cell activity, single-cell genomics, single-cell transcriptomics, phenotypic plasticity, intra-population variability
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-206868 (URN)10.3389/fmicb.2022.881018 (DOI)000807851700001 ()35677911 (PubMedID)
Available from: 2022-06-30 Created: 2022-06-30 Last updated: 2024-01-17Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-3322-599x

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