ArticleBMC genomics2023
Shining the spotlight on the neglected: new high-quality genome assemblies as a gateway to understanding the evolution of Trypanosomatidae.
Article in BMC genomics, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 17 papers.
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17 citing papers in PubMed, 27 citations in OpenAlex.
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- Nuclear Genome Assembly and Annotation of Kinetoplastids.Methods in molecular biology (Clifton, N.J.) · 2026Article
- Epidemiological dynamics ofMicrobial genomics · 2025Article
- Leishmania mexicana telomeres at high resolution: Ku80, TERT, and alternative lengthening mechanisms.BMC genomics · 2025Article
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- Converting Blastocrithidia Nonstop, a Trypanosomatid With Non-Canonical Genetic Code, Into a Genetically-Tractable Model.Molecular microbiology · 2025Article
- Comparative analysis of the mobilome yields new insights into its diversity, dynamics and evolution in parasites of the Trypanosomatidae family.Parasitology · 2025Article
- Somy evolution in the honey bee infecting trypanosomatid parasite Lotmaria passim.G3 (Bethesda, Md.) · 2025Article
- Comparative maxicircle analysis in Trypanosoma species from the LSRM clade highlights patterns in an underexplored lineage.PloS one · 2025Article
- Comprehensive analysis of the Kinetoplastea intron landscape reveals a novel intron-containing gene and the first exclusively trans-splicing eukaryote.BMC biology · 2024Article
- A novel strain of Leishmania braziliensis harbors not a toti- but a bunyavirus.PLoS neglected tropical diseases · 2024Article
- Multiple and frequent trypanosomatid co-infections of insects: the Cuban case study.Parasitology · 2024Article
- Distribution and Functional Analysis of Isocitrate Dehydrogenases across Kinetoplastids.Genome biology and evolution · 2024Article
- In silico prediction of the metabolism of Blastocrithidia nonstop, a trypanosomatid with non-canonical genetic code.BMC genomics · 2024Article
- Identification of diverse RNA viruses inVirus evolution · 2024Article
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Authors and funding
14 authors at 8 institutions in 6 countries.
Funding
Abstract
backgroundProtists of the family Trypanosomatidae (phylum Euglenozoa) have gained notoriety as parasites affecting humans, domestic animals, and agricultural plants. However, the true extent of the group's diversity spreads far beyond the medically and veterinary relevant species. We address several knowledge gaps in trypanosomatid research by undertaking sequencing, assembly, and analysis of genomes from previously overlooked representatives of this protistan group.
resultsWe assembled genomes for twenty-one trypanosomatid species, with a primary focus on insect parasites and Trypanosoma spp. parasitizing non-human hosts. The assemblies exhibit sizes consistent with previously sequenced trypanosomatid genomes, ranging from approximately 18 Mb for Obscuromonas modryi to 35 Mb for Crithidia brevicula and Zelonia costaricensis. Despite being the smallest, the genome of O. modryi has the highest content of repetitive elements, contributing nearly half of its total size. Conversely, the highest proportion of unique DNA is found in the genomes of Wallacemonas spp., with repeats accounting for less than 8% of the assembly length. The majority of examined species exhibit varying degrees of aneuploidy, with trisomy being the most frequently observed condition after disomy.
conclusionsThe genome of Obscuromonas modryi represents a very unusual, if not unique, example of evolution driven by two antidromous forces: i) increasing dependence on the host leading to genomic shrinkage and ii) expansion of repeats causing genome enlargement. The observed variation in somy within and between trypanosomatid genera suggests that these flagellates are largely predisposed to aneuploidy and, apparently, exploit it to gain a fitness advantage. High heterogeneity in the genome size, repeat content, and variation in chromosome copy numbers in the newly-sequenced species highlight the remarkable genome plasticity exhibited by trypanosomatid flagellates. These new genome assemblies are a robust foundation for future research on the genetic basis of life cycle changes and adaptation to different hosts in the family Trypanosomatidae.
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