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Heiss, A. A.

Publications and source records attributed to Heiss, A. A..

4 recordsLinked to original sources

Striated fibre assemblins localise in the feeding groove of the 'typical excavate' Paratrimastix pyriformis

The spatial arrangement of microtubules in the cytoskeleton in the cells of protists has been used for decades for taxonomy and phylogenetic inference at various levels. In contrast, the protein composition of non-microtubular structures is mostly unknown. Exceptions are system I fibers in algae, which are built of striated fiber assemblins (SFAs). Interestingly, SFAs are also components of a range of other, dissimilar structures, playing a role in the cortex of ciliates, cell division in apicomplexans, and adhesion of the parasite Giardia to the intestine. In a broad bioinformatic survey, we show the existence of three ancestral eukaryotic paralogs of SFA, and note that they are present in all "typical excavates": small heterotrophic flagellates bearing a ventral feeding groove. In one representative, Paratrimastix pyriformis, we detected two SFA paralogs using specific antibodies and expansion microscopy. We show that they co-localize selectively with several microtubules and structures attached to the basal body of the posterior flagellum, namely the right microtubular root, B-fiber, C-fiber, and composite fiber. We demonstrate that one of the paralogs self-assembles in vitro into striated filaments which, under negative staining and cryo-electron microscopy, resemble system I fibers as seen in previous studies. Given the facts that all three SFA paralogs appear to be ancestral to most eukaryotic lineages, as is probably the morphology of "typical excavates" with a ventral groove, we speculate that these proteins played roles in the support and development of the feeding apparatus of the last eukaryotic common ancestor. SIGNIFICANCE STATEMENTWe identified three paralogues of intermediate filament-like proteins from the family of striated fiber assemblins in the Last Eukaryotic Common Ancestor (LECA). Using expansion microscopy, we demonstrated that two of these proteins form a complex cytoskeleton that supports the feeding groove of Paratrimastix pyriformis. It is widely accepted that this flagellated protist retains the morphological and feeding characteristics of ancestral eukaryotes. Therefore, our results suggest that the striated fiber assemblin proteins, which form diverse structures in various extant eukaryotes, were initially components of the feeding apparatus in LECA.

microbiology↗

Molecular and morphological characterisation of four new ancyromonad genera and proposal for an updated taxonomy of the Ancyromonadida

Ancyromonads are small biflagellated protists with a bean-shaped morphology. They are cosmopolitan in marine, freshwater and soil environments, where they attach to surfaces while feeding on bacteria. These poorly known grazers stand out by their uncertain phylogenetic position in the tree of eukaryotes, forming a deep-branching orphan lineage that is considered key to better understanding the early evolution of eukaryotes. Despite their ecological and evolutionary interest, only limited knowledge exists about their true diversity. Here, we aimed to better characterise ancyromonads by integrating environmental surveys with behavioural observation and description of cell morphology, for which sample isolation and culturing is indispensable. We studied 18 ancyromonad strains, including 14 new isolates and 7 new species. Most of them belong to three new and genetically divergent genera: Caraotamonas, Nyramonas, and Olneymonas (encompassing 4 species). The remaining three new species belong to the already known genera Fabomonas and Ancyromonas. We also raised Striomonas, formerly a subgenus of Nutomonas, to full genus status, based on morphological and phylogenetic grounds. For all these new species, we studied their morphology under light and electron microscopy and carried out molecular phylogenetic analyses, including as well 18S rRNA gene sequences from several environmental surveys. Based on these analyses, we have updated the taxonomy of Ancyromonadida.

microbiology↗

High quality genome and transcriptome data for two new species of Mantamonas, a deep-branching eukaryote clade

Mantamonads were long considered to represent an "orphan" lineage in the tree of eukaryotes, likely branching near the most frequently assumed position for the root of eukaryotes. Recent phylogenomic analyses have placed them as part of the "CRuMs" supergroup, along with collodictyonids and rigifilids. This supergroup appears to branch at the base of Amorphea, making it of special importance for understanding the deep evolutionary history of eukaryotes. However, the lack of representative species and complete genomic data associated with them has hampered the investigation of their biology and evolution. Here, we isolated and described two new species of mantamonads, Mantamonas vickermani sp. nov. and Mantamonas sphyraenae sp. nov., for each of which we generated transcriptomic sequence data, as well as a high-quality genome for the latter. The estimated size of the M. sphyraenae genome is 25 Mb; our de novo assembly appears to be highly contiguous and complete with 9,416 predicted protein-coding genes. This near-chromosome-scale genome assembly is the first described for the CRuMs supergroup.

genomics↗

Expanding the molecular and morphological diversity of Apusomonadida, a deep-branching group of gliding bacterivorous protists

Apusomonads are cosmopolitan bacterivorous biflagellate protists usually gliding on freshwater and marine sediment or wet soils. These nanoflagellates form a sister lineage to opisthokonts and may have retained ancestral features helpful to understanding the early evolution of this large supergroup. Although molecular environmental analyses indicate that apusomonads are genetically diverse, few species have been described. Here, we morphologically characterize eleven new apusomonad strains. Based on molecular phylogenetic analyses of the rRNA gene operon, we describe four new strains of the known species Multimonas media, Podomonas capensis, Apusomonas proboscidea and Apusomonas australiensis, and rename Thecamonas oxoniensis as Mylnikovia oxoniensis n. gen., n. comb. Additionally, we describe four new genera and six new species: Catacumbia lutetiensis n. gen. n. sp., Cavaliersmithia chaoae n. gen. n. sp., Singekia montserratensis n. gen. n. sp., Singekia franciliensis n. gen. n. sp., Karpovia croatica n. gen. n. sp. and Chelonemonas dolani n. sp. Our comparative analysis suggests that apusomonad ancestor was a fusiform biflagellate with a dorsal pellicle, a plastic ventral surface and a sleeve covering the anterior flagellum, that thrived in marine, possibly oxygen-poor, environments. It likely had a complex cell cycle with dormant and multiple fission stages, and sex. Our results extend known apusomonad diversity, allow updating their taxonomy, and provide elements to understand early eukaryotic evolution.

microbiology↗