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[New species of Microsporidia--Thelohania jungarica SP. N. (Microsporidia, Nosematidae) from larvae of black flies].

A new species of microsporidians, Thelohania jungarica sp. n., was described from larval populations of Odagmia sp. inhabiting the mountain rivers of the northern spurs of Tien-Shan, south-eastern Kazakhstan. The larval infection rate is 3 to 16%. The pupal infection was reported from single individuals. The species in question differs from other members of the genus in the morphology of spores, ecology and host. Sizes of measured 50 spores varied in the following ranges: live ones--5.1-7.6 x 2.5-3.8, fixed and stained--3.8-6.4 x 1.8-3.8 mkm. The parasite causes pathological and morphological changes in injured tissues.

Animals

[New species of Microsporidia - Thelohania assovi Sp. N. (Microsporidia, Nosematidae) from the larvae of black flies].

A new species of microsporidians, Thelohania assovi sp. n., was found in population of larvae of Odagmia sp. inhabiting mountain rivers of Tien-Shan and south-eastern Kazakhstan. The infection of larvae with this species varies from single individuals to 18-20% while pupae are infected only with single speciments. The species differes from all known members of this genus in a number of characters. Size of 50 measured spores varied from 4.4-7.0 X 2.5-3.8 in live specimens to 3.8-6.4 X 2.3-3.8 mem in fixed ones. The parasite causes patho--morphological changes in injured tissues.

Animals

Forty new genomes shed light on sexual reproduction and the origin of tetraploidy in Microsporidia.

Microsporidia are single-celled, obligately intracellular parasites with growing public health, agricultural, and economic importance. Despite this, Microsporidia remain relatively enigmatic, with many aspects of their biology and evolution unexplored. Key questions include whether Microsporidia undergo sexual reproduction, and the nature of the relationship between tetraploid and diploid lineages. While few high-quality microsporidian genomes currently exist to help answer such questions, large-scale biodiversity genomics initiatives, such as the Darwin Tree of Life project, can generate high-quality genome assemblies for microsporidian parasites when sequencing infected host species. Here, we present 40 new microsporidian genome assemblies from infected arthropod hosts that were sequenced to create reference genomes. Out of the 40, 32 are complete genomes, eight of which are chromosome-level, and eight are partial microsporidian genomes. We characterized 14 of these as polyploid and five as diploid. We found that tetraploid genome haplotypes are consistent with autopolyploidy, in that they coalesce more recently than species, and that they likely recombine. Within some genomes, we found large-scale rearrangements between the homeologous genomes. We also observed a high rate of rearrangement between genomes from different microsporidian groups, and a striking tolerance for segmental duplications. Analysis of chromatin conformation capture (Hi-C) data indicated that tetraploid genomes are likely organized into two diploid units, similar to dikaryotic cells in fungi, with evidence of recombination within and between units. Together, our results provide evidence for the existence of a sexual cycle in Microsporidia, and suggest a model for the microsporidian lifecycle that mirrors fungal reproduction.

Genome, Fungal

[Meiosis in Microsporidia: effects on biological cycles].

Synaptinemal complexes have been demonstrated in 7 microsporidian species belonging to 6 different genera (Gurleya, Thelohania, Pleistophora, Tuzetia, Baculea, Glugea). Thus, it can be presumed that a meiosis and consequently a karyogamy occur during their life cycle. Meisis occurs at the beginning of sporogony; therefore, karyogamy, must occur between spore and merogany, i.e. during the poorly known part of the life cycle. In the microsporidian species studied, with uninucleate spores and diplokaryotic merogony (Thelohania for instance), the 2 joined nuclei, each of them containing meiotic chromosomes, not only fail to fuse, but actually separate at the beginning of sporogony; afterwards, each of them undergoes meiosis. Their separation is accompanied by the appearance of an organelle whose structure and function are poorly understood. However, its structure resembles that of the kinetic center. The Nosema species studied do not have synaptinemal complexes; thus, their life cycle is difficult to understand: either karyogamy and meiosis occur during the unobserved part of the life-cycle, or sexual phanomena are absent altogether. In the latter case, the Nosema-type life cycle might be limited to vegetative multiplication which could be explained by the dimorphism theory of Microsporidia. It is shown also in the present study that the life cycle of Microsporidia does not involve haploid organisms which it might be thought to contain by comparing it with the cycles of sporozoa.

Apicomplexa

[Further cytochemical researches on Microsporidia parasites of the Mediterranean shore crab, Carcinus mediterraneus Czerniavsky, 1884 (author's transl)].

A cytochemical study of Microsporidia in Carcinus mediterraneus points out the following data: acid or very acid intrasporoblastic mucopolysaccharids, are found in Thelohamia maenadis which react as sulfomucins in opposition to external asulfated mucosubstances rich in electronegative groups. In Nosema pulvis, the mucopolysaccharid compound is nearly equivalent of that of Nosema orthocladii. Both species are also characterized by the abundance of sulfured proteins in their spore walls and the lack of stock substances.

Animals

[Joint parasitism of Microsporidia (Nosematidae) and Mermithidae (Nematoda) in the larvae of blood-sucking mosquitoes (Diptera, Culicidae)].

A double infection of the larvae of Aedes flavescens and A. cantans with Thelohania opacita and larvae of Mermithidae was established. The double infection is not accompanied by the rise of pathogenic effect of the parasites on the hosts. Mermithids parasitizing mosquitoes infected with microsporidians inhibit the development of Protozoa. The inhibition degree depends on the duration of contacts of coparasites as well as on the developmental phase of microsporidians at the moment of penetration of nematodes.

Aedes

[Pleistophora ladogensis sp. n., a microsporidian (Protozoa, Microsporidia) from the musculature of the burbot, Lota lota, and of the smelt, Osmerus eperlanus eperlanus ladogensis].

The parasite develops inside the fibres of the cross-striated musculature. On the histologic sections of the affected tissue most young stages of P. ladogensis are represented by 2--6 nucleic cells 5--6 mu in size. Mature pansporoblasts have a thick and solid membrane. Their average size is 43 (18--60) mu. The number of spores in pansporoblasts is over 16. Live spores are egg-shaped and are 5.4 (5.0--5.8).2.9 (2.7--3.3) mu in size. The length of the polar filament is 100 to 180 mu.

Animals

[2 new species of microsporidians (Protozoa, Microsporidia) from mosquitoes of the family Chironomidae].

Two new species of microsporidians are described from the mosquitoes of the genus Chironomus collected in water bodies of the north-eastern USSR. Bacillidium chironomi sp. n. injuring the adipose tissue of the fourth stage larvae of Chironomus dorsalis Mg. has rod-shaped spores 15 (11 to 19) x 0.7 (0.6 to 0.9) mu in size. Duboscqia chironomi sp. n. injures the adipose tissue of the fourth stage larvae of Chironomus plumosus L. Fresh spores of this species are egg-shaped, 6.2 (5.8 to 6.5) x 3.8 (3.6 to 4.0) mu in size. When stained according to the Romanovsky-Gimza method the spores are 5.4 (4.9 to 5.8) x 3.8 (3.6 to 4.1) mu in size. Some peculiarities of the nuclei fission in the sporants of Duboscqia chironomi sp. n., are discussed.

Animals

[New species of Microsporidia from the gallbladder of deep-sea fishes].

Two new species of myxosporidians with gigantic spores are described from the gall bladder of Alepocephalus australis caught at 1500 m depth. Both species differ in gigantic sizes of spores that apparently is characteristic of myxosporidians of fishes inhabiting such great depths.

Animals

[New species of Microsporidia, parasite of Myriapoda-Diplopoda of South Dahomey].

A new microsporidian parasitic in Myriapoda-Diplopoda of Sud-Dahomey (Habrodesmus falx Cook & Oxydesmus granulosus Palisot de Beauvois) is described by photonic microscopy. It can be recognized by its thick-enveloped pansporoblasts yielding from 30 to 66 elongate and ovoid spores measuring 4,8 mum in length and 2,2 mum in diameter. The spore is uninucleate. This microsporidian forms cysts in the anterior part of the host affecting the musculature of the digestive tract, the adipose tissue and segmentary muscles. However, it appears necessary to study this parasite again by means of electron microscopy for a better understanding of its life-cycle and in order to place it in the Microsporidian taxonomy.

Animals

Surface shaving proteomics reveals a parasite-encoded protein embedded in the spore filaments of Ameson portunus.

The surfaces of microsporidian spores are frequently adorned with filamentous appendages of unknown origin and function. Although some studies suggest that these structures may be host-acquired, the absence of identified parasite-encoded components has hindered our understanding of their biogenesis and role in infection. Here, we applied surface shaving proteomics to profile the surface-exposed proteins of Ameson portunus -a microsporidian pathogen causing severe myopathy in portunid crabs. Our analysis identified 120 candidate surface proteins. Nineteen of these were highly enriched by both direct shaving and SDS-assisted methods, representing a high-confidence surfome. Among these, a previously uncharacterized protein, designated 8-2.11, was confirmed via immunofluorescence assay and immunoelectron microscopy. It was expressed early in development stage and specifically localized to the spore wall and hair-like projections (HLPs) of microsporidia. Notably, polyclonal antibodies against recombinant 8-2.11 recognized a native protein in spores, specifically labeled the HLP structures, and showed no cross-reactivity with host cells. Our results provide the first evidence of a parasite-encoded protein that is integral to HLP formation, challenging the prevailing hypothesis that these surface filaments are solely host-derived. This study establishes surface shaving as a powerful tool for microsporidian research and highlights 8-2.11 as a promising candidate for future functional studies on spore surface biology and host-parasite interactions.

Animals