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Biology subjects

Kukowka, S.

Publications and source records attributed to Kukowka, S..

3 recordsLinked to original sources

A chromosome-level, haplotype-resolved genome assembly and annotation for the Eurasian minnow (Leuciscidae - Phoxinus phoxinus) provide evidence of haplotype diversity

AO_SCPLOWBSTRACTC_SCPLOWIn this study we present an in-depth analysis of the Eurasian minnow (Phoxinus phoxinus) genome, highlighting its genetic diversity, structural variations, and evolutionary adaptations. We generated an annotated haplotype-phased, chromosome-level genome assembly (2n = 50) by integrating high-fidelity (HiFi) long reads and chromosome conformation capture data (Hi-C). We achieved a haploid size of 940 Megabase pairs (Mbp) for haplome one and 929 Mbp for haplome two with high scaffold N50 values of 36.4 Mb and 36.6 Mb and BUSCO scores of 96.9% and 97.2%, respectively, indicating a highly complete genome assembly. We detected notable heterozygosity (1.43%) and a high repeat content (approximately 54%), primarily consisting of DNA transposons, which contribute to genome rearrangements and variations. We found substantial structural variations within the genome, including insertions, deletions, inversions, and translocations. These variations affect genes enriched in functions such as dephosphorylation, developmental pigmentation, phagocytosis, immunity, and stress response. In the annotation of protein-coding genes, 30,980 mRNAs and 23,497 protein-coding genes were identified with a high completeness score, which further underpins the high contiguity of our genome assemblies. We performed a gene family evolution analysis by comparing our proteome to ten other teleost species, which identified immune system gene families that prioritise histone-based disease prevention over NLR-based immune responses. Additionally, demographic analysis indicates historical fluctuations in the effective population size of P. phoxinus, likely correlating with past climatic changes. This annotated, phased reference genome provides a crucial resource for resolving the taxonomic complexity within the genus Phoxinus and highlights the importance of haplotype-phased assemblies in understanding haplotype diversity in species characterised by high heterozygosity.

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↗

Standardized nuclear markers advance metazoan taxonomy

Species are the fundamental units of life and their recognition is essential for science and society. DNA barcoding, the use of a single and often mitochondrial gene, has been increasingly employed as a universal approach for the identification of animal species. However, this approach faces several challenges. Here, we demonstrate with empirical data from a number of metazoan animal lineages that multiple nuclear-encoded markers, so called universal single-copy orthologs (USCOs) performs much better than the single barcode gene to discriminate closely related species. Overcoming the general shortcomings of mitochondrial DNA barcodes, USCOs also accurately assign samples to higher taxonomic levels. These loci thus provide a powerful and unifying framework for species delimitation which considerably improves the DNA-based inference of animal species.

molecular biology↗