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Kirangwa, J.

Publications and source records attributed to Kirangwa, J..

7 recordsLinked to original sources

Comparative genomics of parasitoid lifestyle as exemplified by Mermithidae and Nematomorpha

Mermithidae and Nematomorpha are parasitoids united by the commonalities in their lifestyle - immature stages infect arthropod hosts, species from both phyla can manipulate their host to induce a similar water-seeking behaviour, and both have a final free-living non-feeding adult reproductive stage, often killing their host upon emergence. Some of these species are of great economic importance, being evaluated as biological control agents against mosquito vectors responsible for diseases like malaria, and other insect pests, but with scarce genomic resources currently available. Nematomorpha, despite being closely related to Nematoda, received insufficient attention in genomic research, leading to gaps in our understanding of their diverse genetic makeup. This study aimed to investigate the genetic features encoded in the genomes of both parasitoid taxa to identify similarities and parallels linked to their ecological lifestyles. We performed a comparative analysis of 12 genomes, comprising parasitoid, parasitic and free-living worms. The investigation revealed genomic signatures unique to parasitoid species, including expanded gene families enriched in neural transmission modulation, likely linked to the known host manipulation that both mermithids and nematomorphs exert on their hosts. The analysis also uncovered a diverse array of conserved transposable element superfamilies across both lineages. The findings from this study provide valuable insights into the potential genomic adaptations associated with parasitoidism in nematode and nematomorph worms. The identification of expanded gene families and conserved transposable element superfamilies sheds light on the molecular underpinnings of their unique biological traits. Additionally, the core set of orthologs specific to parasitoid worms offers new avenues for understanding the evolution of parasitism within these groups of organisms.

genomics↗

Revisiting Hox gene evolution and Hox clusterlinkage across Nematoda

Hox genes are central to metazoan body plan formation, patterning and evolution, playing a critical role in cell fate decisions early in embryonic development in invertebrates and vertebrates. While the archetypical Hox gene cluster consists of members of nine ortholog groups (HOX1-HOX9), arrayed in close linkage in the order in which they have their anterior-posterior patterning effects, nematode Hox gene sets do not fit this model. The Caenorhabditis elegans Hox gene set is not clustered and contains only six Hox genes from four of the ancestral groups. The pattern observed in C. elegans is not typical of the phylum, and variation in orthologue set presence and absence and in genomic organisation has been reported. Recent advances in genome sequencing have resulted in the availability of many novel genome assemblies in Nematoda, especially from taxonomic groups that had not been analysed previously. Here, we explored Hox gene complements in high-quality genomes of 80 species from all major clades of Nematoda to understand the evolution of this key set of body pattern genes and especially to probe the origins of the "dispersed" cluster observed in C. elegans. We also included the recently available high-quality genomes of some Nematomorpha as an outgroup. We find that nematodes can have Hox genes from up to six orthology groups. While nematode Hox "clusters" are often interrupted by unrelated genes we identify species in which the cluster is intact and not dispersed.

developmental biology↗

Revisiting genomes of non-model species with long reads yields new insights into their biology and evolution

High-quality genomes obtained using long-read data allow not only for a better understanding of heterozygosity levels, repeat content, and more accurate gene annotation, and prediction when compared to those obtained with short-read technologies, but also allow to understand haplotype divergence. Advances in long-read sequencing technologies in the last years have made it possible to produce such high-quality assemblies for non-model organisms. This allows us to revisit genomes, which have been problematic to scaffold to chromosome-scale with previous generations of data, and assembly software. Nematoda, one of the most diverse, and speciose animal phyla within metazoans, remains poorly studied, and many previously assembled genomes are fragmented. Using long reads obtained with Nanopore R10.4.1 and PacBio HiFi, we generated highly contiguous assemblies of a diploid nematode of the Mermithidae family, for which no closely related genomes are available to date, as well as a collapsed assembly and a phased assembly for a triploid nematode from the Panagrolaimidae family. Both genomes had been analysed before, but the fragmented assemblies had scaffold sizes comparable to the length of long reads prior to assembly. Our new assemblies illustrate how long-read technologies allow for a much better representation of species genomes. We are now able to conduct more accurate downstream assays based on more complete gene and transposable element predictions.

genomics↗

The European Reference Genome Atlas: piloting a decentralised approach to equitable biodiversity genomics

A global genome database of all of Earths species diversity could be a treasure trove of scientific discoveries. However, regardless of the major advances in genome sequencing technologies, only a tiny fraction of species have genomic information available. To contribute to a more complete planetary genomic database, scientists and institutions across the world have united under the Earth BioGenome Project (EBP), which plans to sequence and assemble high-quality reference genomes for all [~]1.5 million recognized eukaryotic species through a stepwise phased approach. As the initiative transitions into Phase II, where 150,000 species are to be sequenced in just four years, worldwide participation in the project will be fundamental to success. As the European node of the EBP, the European Reference Genome Atlas (ERGA) seeks to implement a new decentralised, accessible, equitable and inclusive model for producing high-quality reference genomes, which will inform EBP as it scales. To embark on this mission, ERGA launched a Pilot Project to establish a network across Europe to develop and test the first infrastructure of its kind for the coordinated and distributed reference genome production on 98 European eukaryotic species from sample providers across 33 European countries. Here we outline the process and challenges faced during the development of a pilot infrastructure for the production of reference genome resources, and explore the effectiveness of this approach in terms of high-quality reference genome production, considering also equity and inclusion. The outcomes and lessons learned during this pilot provide a solid foundation for ERGA while offering key learnings to other transnational and national genomic resource projects.

genomics↗

Reference genome sequence of the solitary bee Camptopoeum friesei Mocsary, 1894 (Hymenoptera, Andrenidae)

Bees are major pollinators of flowering plants and thus are important ecosystem service providers for natural habitats and crops. Evolution led to a wide range of adaptations in behaviors, morphology and ecological traits. Many plants rely on specialized bee species for pollination events, and so this interdependence can make them increasingly vulnerable to ongoing threats of habitat loss and pesticide exposure. Studying the genomes of bee species across different life histories and ecological specializations can help understand the evolution of these traits more generally, but also inform conservation efforts for Camptopoeum friesei specifically. Here, we present the reference genome of the solitary bee Camptopoeum friesei (Arthropoda; Insecta; Hymenoptera; Andrenidae). C. friesei is highly dependent on steppe habitats where it nests in saline soils. Further, it is highly specialized (oligolectic) on a few Asteraceae: Centaurea and Cirsium, in particular on Centaurea stoebe. As a consequence of its high specialization level, it is of its ecological niche with an extremely scattered and rare habitat, C. friesei is highly threatened in central Europe, albeit local aggregations can be rich in individuals. The high-quality genome assembly for the colourful bee Camptopoeum friesei was generated using long-read PacBio HiFi in combination with chromatin conformation capture (Hi-C) sequencing. The genome spans 367.7 megabases (Mb), N50 of 25.2 Mb. The majority of the assembly is scaffolded into 10 chromosomes and harbours [~]40% repeats. Species taxonomyEukaryota; Opisthokonta; Metazoa; Eumetazoa; Bilateria; Protostomia; Ecdysozoa; Panarthropoda; Arthropoda; Mandibulata; Pancrustacea; Hexapoda; Insecta; Dicondylia; Pterygota; Neoptera; Endopterygota; Hymenoptera; Apocrita; Aculeata; Apoidea; Anthophila; Andrenidae; Panurginae; Panurgini; Camptopoeum friesei Mocsary, 1894 (NCBI:txid2918745)

zoology↗

Reference genome of the ant Lasius platythorax

Ants are a highly diversified insect family of the order Hymenoptera, with many fascinating characteristics such as eusociality, chemical communication, farming, or social parasitism. Moreover, ants frequent a wide variety of habitats from dry deserts, grasslands, and savannas to cold temperate forests. The ability of ants to inhabit such diverse habitat ranges demonstrates their adaptability and ecological resilience. However, little is known about the genetic underpinnings of this vast array of traits and their adaptive potential. Here, we generated a high-quality genome assembly for the ant species Lasius platythorax using long-read PacBio HiFi in combination with chromatin conformation capture (Hi-C) sequencing. We successfully assembled the genome into 15 chromosome-level scaffolds ranging from 7.9 to 19.2 Mb and encompassing 204.6 Mb out of 235.3 Mb (total assembly), and a BUSCO score of 86% (Hymenoptera_odb10). Comparative genomics between the two sister species will provide insights into the genomic basis of trait differentiation.

genomics↗

High quality genome assembly and annotation (v1) of the eukaryotic terrestrial microalga Coccomyxa viridis SAG 216-4

Unicellular green algae of the genus Coccomyxa are recognized for their worldwide distribution and ecological versatility. Most species described to date live in close association with various host species, such as in lichen associations. However, little is known about the molecular mechanisms that drive such symbiotic lifestyles. We generated a high-quality genome assembly for the lichen photobiont Coccomyxa viridis SAG 216-4 (formerly C. mucigena). Using long-read PacBio HiFi and Oxford Nanopore Technologies in combination with chromatin conformation capture (Hi-C) sequencing, we assembled the genome into 21 scaffolds with a total length of 50.9 Mb, an N50 of 2.7 Mb and a BUSCO score of 98.6%. While 19 scaffolds represent full-length nuclear chromosomes, two additional scaffolds represent the mitochondrial and plastid genomes. Transcriptome-guided gene annotation resulted in the identification of 13,557 protein-coding genes, of which 68% have annotated PFAM domains and 962 are predicted to be secreted.

genomics↗