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Kruckenhauser, L.

Publications and source records attributed to Kruckenhauser, L..

4 recordsLinked to original sources

The fate of a dynasty: Population genomics uncovers the demographic history of Ardea insignis, one of the rarest bird species in the world

The White-bellied Heron (Ardea insignis) is one of the worlds rarest birds, with fewer than 60 known individuals remaining in the wild. Whether this extreme rarity reflects a recent anthropogenic collapse or a long history of persistently small population size has remained unknown, limiting our understanding of the species evolutionary resilience and conservation needs. Here, we present the first high-quality reference genome for A. insignis, generated using Oxford Nanopore long-read sequencing and complemented with Illumina whole-genome data. Comparative mitochondrial and nuclear phylogenomic analyses consistently recover A. insignis as the sister species of Purple Heron (A. purpurea), while revealing moderate mitonuclear discordance among deeper ardeid lineages. Genome-wide analyses demonstrate exceptionally low heterozygosity and extensive runs of homozygosity relative to the widespread and closely related Great Blue Heron (A. herodias), indicating pronounced genomic erosion and long-term inbreeding. However, the predominance of short and intermediate-length homozygous tracts, together with robust Pairwise Sequentially Markovian Coalescent (PSMC) reconstructions across alternative parameterizations, indicates that A. insignis has persisted with comparatively small effective population sizes over much of its evolutionary history rather than experiencing only a recent demographic collapse. The two sampled individuals nevertheless differ in the abundance of longer homozygous tracts, indicating that inbreeding accumulated over the past few generations has not been uniform among the surviving birds, despite their shared history of chronic rarity. Our results indicate that the White-bellied Heron represents a lineage that has survived prolonged demographic adversity and that its greatest genetic challenge may be limited adaptive potential rather than recent genomic deterioration alone. Beyond providing the first genomic resource for this critically endangered species, our study establishes an evolutionary baseline for future monitoring and highlights the importance of integrating genomic and ecological data to guide conservation strategies for species persisting at the edge of extinction.

evolutionary biology↗

Phylogenomics supports monophyly of marsupial crustaceans: a journey to direct development

Peracarida (marsupial crustaceans) represent one of the most diverse and ecologically important crustacean groups, yet their evolutionary relationships have long been debated. Here, we present the most comprehensive phylogenomic analysis of Peracarida to date, incorporating the relict taxa Thermosbaenacea, Mictacea, Ingolfiellida, and Spelaeogriphacea for the first time in a phylogenomic framework. Our results robustly confirm peracarid monophyly and recover a well-supported clade uniting Mancoida (Isopoda, Tanaidaca, Cumacea), Mictacea, and Spelaeogriphacea. We propose the new taxon Panmancoida to encompass this expanded lineage defined by shared developmental and morphological traits. The inferred phylogeny further suggests that peracarid evolution involved a transition from an intermediate "pseudodirect" developmental mode to the direct development seen in most lineages. We further show that the shift to extensive brood care within the marsupium, accompanied by the loss of a free-swimming larval stage, may have accelerated rates of molecular evolution across lineages. Together, these findings provide a robust evolutionary framework for this major malacostracan lineage and highlight how key reproductive innovations reshaped the genomic and life-history trajectories of the marsupial crustaceans.

evolutionary biology↗

AmpliPiper: A versatile amplicon-seq analysis tool for multilocus DNA barcoding

The advent of third generation sequencing technology has revolutionized parallelized sequencing of DNA fragments of varying lengths, such as PCR amplicons, which provides unprecedented new opportunities for large-scale and diverse DNA barcoding projects that, for example, aim to quantify the accelerating biodiversity crisis. However, the broad-scale application of these new technologies for biodiversity research is often hindered by the demand for advanced bioinformatics skills to carry out quantitative analyses. To facilitate the application of multilocus amplicon sequencing (amplicon-seq) data for biodiversity and integrative taxonomic research questions, we present AmpliPiper, an automated and user-friendly software pipeline which carries out bioinformatics analyses of multilocus amplicon-seq data generated with Oxford Nanopore (ONT) sequencing. AmpliPiper combines analysis methods for DNA barcoding data that include demultiplexing of pooled amplicon-seq data, haplotype-specific consensus sequence reconstruction, species identification based on comparison to the BOLD and GenBank databases, phylogenetic analyses and species delimitation. We demonstrate the applicability and workflow of our approach based on a newly generated dataset of 14 hoverfly (Syrphidae) samples that were amplified and sequenced at four marker genes. We further benchmark our approach with Sanger sequencing and simulated amplicon-seq data which show that DNA barcoding with ONT is both accurate and sensitive to detect even subtle genetic variation.

bioinformatics↗

Historic museum samples provide evidence for a recent replacement of Wolbachia types in European Drosophila melanogaster.

Wolbachia is one of the most common bacterial endosymbionts, which is frequently found in numerous arthropods and nematode taxa. Wolbachia infections can have a strong influence on the evolutionary dynamics of their hosts since these bacteria are reproductive manipulators that affect the fitness and life history of their host species for their own benefit. Host-symbiont interactions with Wolbachia are perhaps best studied in the model organism Drosophila melanogaster, which is naturally infected with five different types among which wMel and wMelCS are the most frequent ones. Comparisons of infection types between natural flies and long-term lab stocks have previously indicated that wMelCS represents the ancestral type, which was only very recently replaced by the nowadays dominant wMel in most natural populations. In this study, we took advantage of recently sequenced museum specimens of D. melanogaster that have been collected 90-200 years ago in Northern Europe to test this hypothesis. Our comparison to contemporary Wolbachia samples provides compelling support for the replacement hypothesis and identifies potential infections with yet unknown Wolbachia types of supergroup B. Our analyses show that sequencing data from historic museum specimens and their bycatch are an emerging and unprecedented resource to address fundamental questions about evolutionary dynamics in host-symbiont interactions.

evolutionary biology↗