Multiple and frequent trypanosomatid co-infections of insects: the Cuban case study
Jazyk angličtina Země Velká Británie, Anglie Médium print-electronic
Typ dokumentu časopisecké články
Grantová podpora
DKRVO 2024-2028/5.I.a
Ministerstvo Kultury
CZ.02.1.01/0.0/0.0/16_019/0000759
Ministerstvo Školství, Mládeže a Tělovýchovy
21-09283S
Grantová Agentura České Republiky
22-14356S
Grantová Agentura České Republiky
PubMed
38616408
PubMed Central
PMC11428007
DOI
10.1017/s0031182024000453
PII: S0031182024000453
Knihovny.cz E-zdroje
- Klíčová slova
- biodiversity, diptera, heteroptera, host specificity, monoxenous trypanosomatids, multiple infections, nanopore sequencing, phylogeny, systematics,
- MeSH
- Diptera genetika MeSH
- fylogeneze * MeSH
- Hemiptera parazitologie genetika MeSH
- koinfekce * parazitologie MeSH
- protozoální DNA genetika analýza MeSH
- RNA ribozomální 18S * genetika analýza MeSH
- Trypanosomatina * genetika klasifikace izolace a purifikace MeSH
- zvířata MeSH
- Check Tag
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
- Geografické názvy
- Kuba epidemiologie MeSH
- Názvy látek
- protozoální DNA MeSH
- RNA ribozomální 18S * MeSH
Trypanosomatids are obligate parasites of animals, predominantly insects and vertebrates, and flowering plants. Monoxenous species, representing the vast majority of trypanosomatid diversity, develop in a single host, whereas dixenous species cycle between two hosts, of which primarily insect serves as a vector. To explore in-depth the diversity of insect trypanosomatids including their co-infections, sequence profiling of their 18S rRNA gene was used for true bugs (Hemiptera; 18% infection rate) and flies (Diptera; 10%) in Cuba. Out of 48 species (molecular operational taxonomic units) belonging to the genera Vickermania (16 spp.), Blastocrithidia (7), Obscuromonas (4), Phytomonas (5), Leptomonas/Crithidia (5), Herpetomonas (5), Wallacemonas (2), Kentomonas (1), Angomonas (1) and two unnamed genera (1 + 1), 38 species have been encountered for the first time. The detected Wallacemonas and Angomonas species constitute the most basal lineages of their respective genera, while Vickermania emerged as the most diverse group. The finding of Leptomonas seymouri, which is known to rarely infect humans, confirms that Dysdercus bugs are its natural hosts. A clear association of Phytomonas with the heteropteran family Pentatomidae hints at its narrow host association with the insect rather than plant hosts. With a focus on multiple infections of a single fly host, using deep Nanopore sequencing of 18S rRNA, we have identified co-infections with up to 8 trypanosomatid species. The fly midgut was usually occupied by several Vickermania species, while Herpetomonas and/or Kentomonas species prevailed in the hindgut. Metabarcoding was instrumental for analysing extensive co-infections and also allowed the identification of trypanosomatid lineages and genera.
Department of Entomology National Museum Prague Czechia
Department of Ophthalmology Thomayer University Hospital Prague Czechia
Department of Parasitology Faculty of Science Charles University Prague Czechia
Faculty of Sciences University of South Bohemia České Budějovice Czechia
Institute of Parasitology Biology Centre Czech Academy of Sciences České Budějovice Czechia
Military Health Institute Military Medical Agency Prague Czechia
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Akhoundi M, Kuhls K, Cannet A, Votýpka J, Marty P, Delaunay P and Sereno D (2016) A historical overview of the classification, evolution, and dispersion of Leishmania parasites and sandflies (Review). PLoS Neglected Tropical Diseases 10, e0004349. PubMed PMC
Albanaz ATS, Carrington M, Frolov AO, Ganyukova AI, Gerasimov ES, Kostygov AY, Lukeš J, Malysheva MN, Volf P, Votýpka J, Zakharova A, Záhonová K, Zimmer SL, Yurchenko V and Butenko A (2023) Shining the spotlight on the neglected: new high-quality genome assemblies as a gateway to understanding the evolution of Trypanosomatidae. BMC Genomics 24, 471. PubMed PMC
Antonucci A (1941) Sopra un nuovo Leptomonas degli emitteri Ligeidi (Leptomonas pierantonii n. sp.). Archivio Zoologico Italiano 29, 63–75.
Baranov PV and Atkins JF (2023) No stopping with a short-stem transfer RNA. Nature 613, 631–632. PubMed
Baranowski RM and Slater JA (1975) The life history of Craspeduchus pulchellus, a Lygaeid new to the United States (Hemiptera: Lygaeidae). The Florida Entomologist 58, 297–302.
Blacklock B (1923) A pyrrhocorid bug capable of biting man. Annals of Tropical Medicine & Parasitology 17, 337–345.
Borghesan TC, Ferreira RC, Takata CSA, Campaner M, Borda CC, Paiva F, Milder RV, Teixeira MMG and Camargo EP (2013) Molecular phylogenetic redefinition of Herpetomonas (Kinetoplastea, Trypanosomatidae), a genus of insect parasites associated with flies. Protist 164, 129–152. PubMed
Borghesan TC, Campaner M, Matsumoto TE, Espinosa OA, Razafindranaivo V, Paiva F, Carranza JC, Añez N, Neves L, Teixeira MMG and Camargo EP (2018) Genetic diversity and phylogenetic relationships of coevolving symbiont-harboring insect trypanosomatids, and their Neotropical dispersal by invader African blowflies (Calliphoridae). Frontiers in Microbiology 9, 131. PubMed PMC
Camacho C, Coulouris G, Avagyan V, Ma N, Papadopoulos J, Bealer K and Madden TL (2009) BLAST+: architecture and applications. BMC Bioinformatics 10, 421. PubMed PMC
Dario MA, Lisboa CV, Silva MV, Herrera HM, Rocha FL, Furtado MC, Moratelli R, Roque ALR and Jansen AM (2021) Crithidia mellificae infection in different mammalian species in Brazil. International Journal for Parasitology: Parasites and Wildlife 15, 58–69. PubMed PMC
De Souza W and Motta MCM (1999) Endosymbiosis in protozoa of the Trypanosomatidae family. FEMS Microbiology Letters 173, 1–8. PubMed
Franchini G (1922) Sur un flagellé de lygoeide (Crithidia oxycareni n. sp.). Bulletin de la Société de Pathologie Exotique 15, 113–116.
Froeschner RC (1942) Contributions to a synopsis of the Hemiptera of Missouri, Pt. II. Coreidae, Aradidae, Neididae. The American Midland Naturalist 27, 591–609.
Frolov AO, Malysheva MN, Ganyukova AI, Yurchenko V and Kostygov AY (2017) Life cycle of Blastocrithidia papi sp. n. (Kinetoplastea, Trypanosomatidae) in Pyrrhocoris apterus (Hemiptera, Pyrrhocoridae). European Journal of Protistology 57, 85–98. PubMed
Frolov AO, Malysheva MN, Ganyukova AI, Yurchenko V and Kostygov AY (2018) Obligate development of Blastocrithidia papi (Trypanosomatidae) in the Malpighian tubules of Pyrrhocoris apterus (Hemiptera) and coordination of host-parasite life cycles. PLoS One 13, e0204467. PubMed PMC
Frolov AO, Malysheva MN, Ganyukova AI, Spodareva VV, Yurchenko V and Kostygov AY (2019) Development of Phytomonas lipae sp. n. (Kinetoplastea: Trypanosomatidae) in the true bug Coreus marginatus (Heteroptera: Coreidae) and insights into the evolution of life cycles in the genus Phytomonas. PLoS One 14, e0214484. PubMed PMC
Frolov AO, Malysheva MN, Ganyukova AI, Spodareva VV, Králová J, Yurchenko V and Kostygov AY (2020) If host is refractory, insistent parasite goes berserk: trypanosomatid Blastocrithidia raabei in the dock bug Coreus marginatus. PLoS One 15, e0227832. PubMed PMC
Frolov AO, Kostygov AY and Yurchenko V (2021) Development of monoxenous trypanosomatids and phytomonads in insects. Trends in Parasitology 37, 538–551. PubMed
Galvão AB, Oliveira RL, Carvalho ALM and Veiga GP (1970) Leptomonas pessoai sp. n. (Trypanosomatidae, Kinetoplastida, Protozoa). Revista Goiana de Medicina 16, 229–236.
Ganyukova AI, Malysheva MN and Frolov AO (2017) Angomonas deanei (Kinetoplastida: Trypanosomatidae) in the fly Lucilia sp. (Diptera: Calliphoridae): description and cultivation of a new strain. Parazitologiia 51, 387–398.
Ganyukova AI, Frolov AO, Malysheva MN, Spodareva VV, Yurchenko V and Kostygov AY (2020) A novel endosymbiont-containing trypanosomatid Phytomonas borealis sp. n. from the predatory bug Picromerus bidens (Heteroptera: Pentatomidae). Folia Parasitologica 67, 004. PubMed
Ghosh S, Banerjee P, Sarkar A, Datta S and Chatterjee M (2012) Coinfection of Leptomonas seymouri and Leishmania donovani in Indian leishmaniasis. Journal of Clinical Microbiology 50, 2774–2778. PubMed PMC
Grillo RH (1993) The subfamily Oxycareninae Stal (Heteroptera: Lygaeidae), new report to Cuba. Centro Agrícola 20, 46–50.
Husnik F, Tashyreva D, Boscaro V, George EE, Lukeš J and Keeling PJ (2021) Bacterial and archaeal symbioses with protists. Current Biology 31, R862–R877. PubMed
Kachale A, Pavlíková Z, Nenarokova A, Roithová A, Durante IM, Miletínová P, Záhonová K, Nenarokov S, Votýpka J, Horáková E, Ross RL, Yurchenko V, Beznosková P, Paris Z, Valášek LS and Lukeš J (2023) Short tRNA anticodon stem and mutant eRF1 allow stop codon reassignment. Nature 613, 751–758. PubMed
Kostygov AY, Malysheva MN and Frolov AO (2011) Investigation of causes of the conflict between taxonomy and molecular phylogeny of trypanosomatids by the example of Leptomonas nabiculae Podlipaev, 1987. Parazitologiia 45, 409–424. PubMed
Kostygov AY, Grybchuk-Ieremenko A, Malysheva MN, Frolov AO and Yurchenko V (2014) Molecular revision of the genus Wallaceina. Protist 165, 594–604. PubMed
Kostygov AY, Butenko A, Nenarokova A, Tashyreva D, Flegontov P, Lukeš J and Yurchenko V (2017) Genome of Ca. Pandoraea novymonadis, an endosymbiotic bacterium of the trypanosomatid Novymonas esmeraldas. Frontiers in Microbiology 8, 1940. PubMed PMC
Kostygov AY, Frolov AO, Malysheva MN, Ganyukova AI, Chistyakova LV, Tashyreva D, Tesařová M, Spodareva MM, Režnarová J, Macedo DH, Butenko A, D'avila-Levy CM, Lukeš J and Yurchenko V (2020) Vickermania gen. nov., trypanosomatids that use two joined flagella to resist midgut peristaltic flow within the fly host. BMC Biology 18, 187. PubMed PMC
Kostygov AY, Albanaz ATS, Butenko A, Gerasimov ES, Lukeš J and Yurchenko V (2024) Phylogenetic framework to explore trait evolution in Trypanosomatidae. Trends in Parasitology 40, 96–99. PubMed
Kozminsky E, Kraeva N, Ishemgulova A, Dobáková E, Lukeš J, Kment P, Yurchenko V, Votýpka J and Maslov DA (2015) Host-specificity of monoxenous trypanosomatids: statistical analysis of the distribution and transmission patterns of the parasites from Neotropical Heteroptera. Protist 166, 551–568. PubMed
Kraeva N, Butenko A, Hlaváčová J, Kostygov A, Myškova J, Grybchuk D, Leštinová T, Votýpka J, Volf P, Opperdoes F, Flegontov P, Lukeš J and Yurchenko V (2015) Leptomonas seymouri: adaptations to the dixenous life cycle analyzed by genome sequencing, transcriptome profiling and co-infection with Leishmania donovani. PLoS Pathogens 11, e1005127. PubMed PMC
Králová J, Grybchuk-Ieremenko A, Votýpka J, Novotný V, Kment P, Lukeš J, Yurchenko V and Kostygov AY (2019) Insect trypanosomatids in Papua New Guinea: high endemism and diversity. International Journal for Parasitology 49, 1075–1086. PubMed
Lukeš J and Votýpka J (2020) Field isolation and cultivation of trypanosomatids from insects. In Michels P, Ginger M and Zilberstein D (eds), Trypanosomatids. Methods in Molecular Biology. New York, USA: Humana Press, pp. 3–21. PubMed
Lukeš J, Skalický T, Týč J, Votýpka J and Yurchenko V (2014) Evolution of parasitism in kinetoplastid flagellates. Molecular and Biochemical Parasitology 195, 115–122. PubMed
Lukeš J, Butenko A, Hashimi H, Maslov DA, Votýpka J and Yurchenko V (2018) Trypanosomatids are much more than just trypanosomes: clues from the expanded family tree. Trends in Parasitology 34, 466–480. PubMed
Lukeš J, Speijer D, Zíková A, Alfonzo JD, Hashimi H and Field MC (2023) Trypanosomes as a magnifying glass for cell and molecular biology. Trends in Parasitology 39, 902–912. PubMed
Malysheva MN, Frolov AO and Kostygov AY (2022) Niche partitioning within an insect host: trypanosomatids Wallacemonas raviniae and Trypanosoma (Megatrypanum) sp. in the horsefly Hybomitra solstitialis. Protistology 16, 87–97.
Malysheva MN, Ganyukova AI and Frolov AO (2023) Host specificity of Phytomonas serpens (Kinetoplastea: Trypanosomatida) to experimental vectors from two families of the true bugs, Pentatomidae and Coreidae. Protistology 17, 85–91.
Maslov DA, Westenberger SJ, Xu X, Campbell DA and Sturm NR (2007) Discovery and barcoding by analysis of spliced leader RNA gene sequences of new isolates of Trypanosomatidae from Heteroptera in Costa Rica and Ecuador. Journal of Eukaryotic Microbiology 54, 57–65. PubMed
Maslov DA, Yurchenko V, Jirků M and Lukeš J (2010) Two new species of trypanosomatid parasites isolated from Heteroptera in Costa Rica. Journal of Eukaryotic Microbiology 57, 177–188. PubMed
Maslov DA, Votýpka J, Yurchenko V and Lukeš J (2013) Diversity and phylogeny of insect trypanosomatids: all that is hidden shall be revealed. Trends in Parasitology 29, 43–52. PubMed
Matthews KR (2015) 25 years of African trypanosome research: from description to molecular dissection and new drug discovery. Molecular and Biochemical Parasitology 200, 30–40. PubMed PMC
Moraes R, Freymuller E, Camargo E and Milder R (1994) Development of trypanosomatids in the phytophagous insect Dysdercus peruvianus (Hemiptera: Pyrrhocoridae). A light and eletron microscopic study. Memórias do Instituto Oswaldo Cruz 89, 553–559. PubMed
Podlipaev SA and Lobanov AL (1996) Use of the measure characters for discrimination of lower trypanosomatids. Parazitologiia 30, 324–332.
Podlipaev SA, Sturm NR, Fiala I, Fernandes O, Westenberger SJ, Dollet M, Campbell DA and Lukeš J (2004) Diversity of insect trypanosomatids assessed from the spliced leader RNA and 5S rRNA genes and intergenic regions. Journal of Eukaryotic Microbiology 51, 283–290. PubMed
Prowazek S (1904) Die Entwicklung von Herpetomonas, einem mit den Trypanosomen verwandten Flagellaten. Arbeite aus dem Kaiserlichen Gesundheitsamte 20, 440–452.
R Core Team (2020) R: A Language and Environment for Statistical Computing. Vienna, Austria: R Foundation for Statistical Computing. Available at https://www.R-project.org/
Sbravate C, Campaner M, Camargo LEA, Conchon I, Teixeira MMG and Camargo EP (1989) Culture and generic identification of trypanosomatids of phytophagous Hemiptera in Brazil. The Journal of Protozoology 36, 543–547.
Seward EA, Votýpka J, Kment P, Lukeš J and Kelly S (2017) Description of Phytomonas oxycareni n. sp. from the salivary glands of Oxycarenus lavaterae. Protist 168, 71–79. PubMed
Singh N, Chikara S and Sundar S (2013) SOLiDTM sequencing of genomes of clinical isolates of Leishmania donovani from India confirm Leptomonas co-infection and raise some key questions. PloS One 8, e55738. PubMed PMC
Stevens JR (2001) One million insects – a lot of parasites? Trends in Parasitology 17, 119–120. PubMed
Teixeira MMG, Takata CSA, Conchon I, Campaner M and Camargo EP (1997) Ribosomal and kDNA markers distinguish two subgroups of Herpetomonas among old species and new trypanosomatids isolated from flies. The Journal of Parasitology 83, 58–65. PubMed
Teixeira MMG, Borghesan TC, Ferreira RC, Santos MA, Takata CSA, Campaner M, Nunes VLB, Milder RV, De Souza W and Camargo EP (2011) Phylogenetic validation of the genera Angomonas and Strigomonas of trypanosomatids harboring bacterial endosymbionts with the description of new species of trypanosomatids and of proteobacterial symbionts. Protist 162, 503–524. PubMed
Týč J, Votýpka J, Klepetková H, Suláková H, Jirků M and Lukeš J (2013) Growing diversity of trypanosomatid parasites of flies (Diptera: Brachycera): frequent cosmopolitism and moderate host specificity. Molecular Phylogenetics and Evolution 69, 255–264. PubMed
Ventura M, Montalvan R and Panizzi A (2000a) Feeding preferences and related types of behaviour of Neomegalotomus parvus. Entomologia Experimentalis et Applicata 97, 309–315.
Ventura MU, Silva JJ and Panizzi AR (2000b) Phytophagous Neomegalotomus parvus (Westwood) (Hemiptera: Alydidae) feeding on carrion and feces. Anais da Sociedade Entomológica do Brasil 29, 839–841.
Votýpka J, Maslov A, Yurchenko V, Jirků M, Kment P, Lun Z-R and Lukeš J (2010) Probing into the diversity of trypanosomatid flagellates parasitizing insect hosts in South-West China reveals both endemism and global dispersal. Molecular Phylogenetics and Evolution 54, 243–253. PubMed
Votýpka J, Klepetková H, Jirků M, Kment P and Lukeš J (2012a) Phylogenetic relationships of trypanosomatids parasitising true bugs (Insecta: Heteroptera) in sub-Saharan Africa. International Journal for Parasitology 42, 489–500. PubMed
Votýpka J, Klepetková H, Yurchenko V, Horák A, Lukeš J and Maslov DA (2012b) Cosmopolitan distribution of a trypanosomatid Leptomonas pyrrhocoris. Protist 163, 616–631. PubMed
Votýpka J, Kostygov AY, Kraeva N, Grybchuk-Ieremenko A, Tesařová M, Grybchuk D, Lukeš J and Yurchenko V (2014) Kentomonas gen. n., a new genus of endosymbiont-containing trypanosomatids of Strigomonadinae subfam. n. Protist 165, 825–838. PubMed
Votýpka J, Pafčo B, Modrý D, Mbohli D, Tagg N and Petrželková KJ (2018) An unexpected diversity of trypanosomatids in fecal samples of great apes. International Journal for Parasitology: Parasites and Wildlife 7, 322–325. PubMed PMC
Votýpka J, Kment P, Kriegová E, Vermeij MJA, Keeling PJ, Yurchenko V and Lukeš J (2019) High prevalence and endemism of trypanosomatids on a small Caribbean island. Journal of Eukaryotic Microbiology 66, 600–607. PubMed
Votýpka J, Kment P, Yurchenko V and Lukeš J (2020) Endangered monoxenous trypanosomatid parasites: a lesson from island biogeography. Biodiversity and Conservation 29, 3635–3667.
Wallace FG (1977) Leptomonas seymouri sp. n. from the cotton stainer Dysdercus suturellus. The Journal of Protozoology 24, 483–484. PubMed
Westenberger SJ, Sturm NR, Yanega D, Podlipaev SA, Zeledón R, Campbell DA and Maslov DA (2004) Trypanosomatid biodiversity in Costa Rica: genotyping of parasites from Heteroptera using the spliced leader RNA gene. Parasitology 129, 537–547. PubMed
Wick RR, Judd LM, Gorrie CL and Holt KE (2017) Completing bacterial genome assemblies with multiplex MinION sequencing. Microbial Genomics 3, e000132. PubMed PMC
Wick RR, Judd LM and Holt KE (2019) Performance of neural network basecalling tools for Oxford Nanopore sequencing. Genome Biology 20, 129. PubMed PMC
Yurchenko V, Kostygov AY, Havlová J, Grybchuk-Ieremenko A, Ševčíková T, Lukeš J, Ševčík J and Votýpka J (2016) Diversity of trypanosomatids in cockroaches and the description of Herpetomonas tarakana sp. n. Journal of Eukaryotic Microbiology 63, 198–209. PubMed
Záhonová K, Kostygov AY, Ševčíková T, Yurchenko V and Eliáš M (2016) An unprecedented non-canonical nuclear genetic code with all three termination codons reassigned as sense codons. Current Biology 26, 2364–2369. PubMed
Zakharova A, Tashyreva D, Butenko A, Morales J, Saura A, Svobodová M, Poschmann G, Nandipati S, Zakharova A, Noyvert D, Gahura O, Týč J, Stuhler K, Kostygov AY, Nowack ECM, Lukeš J and Yurchenko V (2023) A neo-functionalized homolog of host transmembrane protein controls localization of bacterial endosymbionts in the trypanosomatid Novymonas esmeraldas. Current Biology 33, 2690–2701. PubMed
Zanetti A, Ferreira RC, Serrano MG, Takata CS, Campaner M, Attias M, De Souza W, Teixeira MMG and Camargo EP (2016) Phytomonas (Euglenozoa: Trypanosomatidae): phylogenetic analyses support infrageneric lineages and a new species transmitted to Solanaceae fruits by a pentatomid hemipteran. European Journal of Protistology 56, 232–249. PubMed