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Publications (5 of 5) Show all publications
Chacón-Duque, J. C., Thomas Thorpe, J. A., Li, W., Dehasque, M., Pečnerová, P., Barlow, A., . . . Dalén, L. (2025). A Million Years of Mammoth Mitogenome Evolution. Molecular biology and evolution, 42(4), Article ID msaf065.
Open this publication in new window or tab >>A Million Years of Mammoth Mitogenome Evolution
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2025 (English)In: Molecular biology and evolution, ISSN 0737-4038, E-ISSN 1537-1719, Vol. 42, no 4, article id msaf065Article in journal (Refereed) Published
Abstract [en]

The genomic study of specimens dating to the Early and Middle Pleistocene (EP and MP), a period spanning from 2.6 million years ago (Ma) to 126 thousand years ago (ka), has the potential to elucidate the evolutionary processes that shaped present-day biodiversity. Obtaining genomic data from this period is challenging, but mitochondrial DNA, given its higher abundance compared to nuclear DNA, could play an important role to understand evolutionary processes at this time scale. In this study, we report 34 new mitogenomes, including two EP and nine MP mammoth (Mammuthus spp.) specimens from Siberia and North America and analyze them jointly with >200 publicly available mitogenomes to reconstruct a transect of mammoth mitogenome diversity throughout the last million years. We find that our EP mitogenomes fall outside the diversity of all Late Pleistocene (LP) mammoths, while those derived from MP mammoths are basal to LP mammoth Clades 2 and 3, supporting an ancient Siberian origin of these lineages. In contrast, the geographical origin of Clade 1 remains unresolved. With these new deep-Time mitogenomes, we observe diversification events across all clades that appear consistent with previously hypothesized MP and LP demographic changes. Furthermore, we improve upon an existing methodology for molecular clock dating of specimens >50 ka, demonstrating that specimens need to be individually dated to avoid biases in their age estimates. Both the molecular and analytical improvements presented here highlight the importance of deep-Time genomic data to discover long-lost genetic diversity, enabling better assessments of evolutionary histories.

Keywords
deep-Time DNA, mammoths, mitogenomes, molecular clock dating, palaeogenomics, phylogenetics
National Category
Zoology Genetics and Genomics
Identifiers
urn:nbn:se:su:diva-242989 (URN)10.1093/molbev/msaf065 (DOI)001463164300001 ()40202893 (PubMedID)2-s2.0-105002791877 (Scopus ID)
Available from: 2025-05-08 Created: 2025-05-08 Last updated: 2025-05-08Bibliographically approved
Lopez Clinton, S., Iwaszkiewicz-Eggebrecht, E., Miraldo, A., Goodsell, R., Webster, M. T., Ronquist, F. & van der Valk, T. (2025). Small Bugs, Big Data: Metagenomics for Arthropod Biodiversity Monitoring. Ecology and Evolution, 15(9), Article ID e72163.
Open this publication in new window or tab >>Small Bugs, Big Data: Metagenomics for Arthropod Biodiversity Monitoring
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2025 (English)In: Ecology and Evolution, E-ISSN 2045-7758, Vol. 15, no 9, article id e72163Article in journal (Refereed) Published
Abstract [en]

Obtaining genome-wide data from complex samples, such as environmental material or bulk species collections, is increasingly feasible, yet inferring species presence and population genomic insights remains challenging. We applied metagenomic sequencing to 40 arthropod bulk samples collected with Malaise traps across Sweden and compared results with metabarcoding of the same material. Using a custom genome database, we achieved genus-level classification largely consistent with metabarcoding. While metagenomics detected all genera identified by metabarcoding, conservative filtering thresholds designed to minimise false positives also excluded some true signals, particularly for low-abundance taxa. Taxonomic overlap between methods was further constrained by limited reference database representation. Beyond taxonomic assignment, metagenomic sequencing yielded genome-level information: we inferred haplotype diversity, heterozygosity and geographic population structure for several abundant species, including variable degrees of hybrid origin in red wood ants and the genetic distinctiveness of Gotland bumblebees. Finally, by-catch plant DNA present in the bulk samples revealed plausible arthropod-plant interactions, several of which align with known ecological associations. Together, these results demonstrate the potential of metagenomics for biodiversity monitoring and population genomics, while underscoring the importance of filtering criteria and comprehensive reference databases.

Keywords
biodiversity monitoring, bulkDNA, k-mer classification, metabarcoding, metagenomics
National Category
Bioinformatics and Computational Biology
Identifiers
urn:nbn:se:su:diva-247828 (URN)10.1002/ece3.72163 (DOI)001572163300001 ()40964625 (PubMedID)2-s2.0-105016350598 (Scopus ID)
Available from: 2025-10-22 Created: 2025-10-22 Last updated: 2025-10-22Bibliographically approved
van der Valk, T., Jensen, A., Caillaud, D. & Guschanski, K. (2024). Comparative genomic analyses provide new insights into evolutionary history and conservation genomics of gorillas. BMC Ecology and Evolution, 24(1), Article ID 14.
Open this publication in new window or tab >>Comparative genomic analyses provide new insights into evolutionary history and conservation genomics of gorillas
2024 (English)In: BMC Ecology and Evolution, E-ISSN 2730-7182, Vol. 24, no 1, article id 14Article in journal (Refereed) Published
Abstract [en]

Genome sequencing is a powerful tool to understand species evolutionary history, uncover genes under selection, which could be informative of local adaptation, and infer measures of genetic diversity, inbreeding and mutational load that could be used to inform conservation efforts. Gorillas, critically endangered primates, have received considerable attention and with the recently sequenced Bwindi mountain gorilla population, genomic data is now available from all gorilla subspecies and both mountain gorilla populations. Here, we reanalysed this rich dataset with a focus on evolutionary history, local adaptation and genomic parameters relevant for conservation. We estimate a recent split between western and eastern gorillas of 150,000–180,000 years ago, with gene flow around 20,000 years ago, primarily between the Cross River and Grauer’s gorilla subspecies. This gene flow event likely obscures evolutionary relationships within eastern gorillas: after excluding putatively introgressed genomic regions, we uncover a sister relationship between Virunga mountain gorillas and Grauer’s gorillas to the exclusion of Bwindi mountain gorillas. This makes mountain gorillas paraphyletic. Eastern gorillas are less genetically diverse and more inbred than western gorillas, yet we detected lower genetic load in the eastern species. Analyses of indels fit remarkably well with differences in genetic diversity across gorilla taxa as recovered with nucleotide diversity measures. We also identified genes under selection and unique gene variants specific for each gorilla subspecies, encoding, among others, traits involved in immunity, diet, muscular development, hair morphology and behavior. The presence of this functional variation suggests that the subspecies may be locally adapted. In conclusion, using extensive genomic resources we provide a comprehensive overview of gorilla genomic diversity, including a so-far understudied Bwindi mountain gorilla population, identify putative genes involved in local adaptation, and detect population-specific gene flow across gorilla species.

Keywords
Inbreeding, Gene flow, Genetic diversity, Local adaptation
National Category
Genetics and Genomics Evolutionary Biology
Identifiers
urn:nbn:se:su:diva-226505 (URN)10.1186/s12862-023-02195-x (DOI)001148753800001 ()38273244 (PubMedID)2-s2.0-85182981894 (Scopus ID)
Available from: 2024-02-19 Created: 2024-02-19 Last updated: 2025-02-01Bibliographically approved
Johnson, E., Martin, N., Alumbaugh, J., Cocker, S., Gustaf, P., van der Valk, T., . . . Linderholm, A.Mammoth steppe ecosystem revealed by sedimentary ancient DNA from MIS 3 sediment deposit in Sweden.
Open this publication in new window or tab >>Mammoth steppe ecosystem revealed by sedimentary ancient DNA from MIS 3 sediment deposit in Sweden
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(English)Manuscript (preprint) (Other academic)
Keywords
MIS 3, woolly mammoth, sedaDNA, sedimentary ancient DNA
National Category
Palaeontology and Palaeoecology
Identifiers
urn:nbn:se:su:diva-253799 (URN)
Available from: 2026-03-30 Created: 2026-03-30 Last updated: 2026-04-09Bibliographically approved
Irestedt, M., Müller, I. A., Thörn, F., Joseph, L., Nylander, J., Guinet, B., . . . Jønsson, K. Reticulate and hybrid speciation is promoted by environmental instability in an Indo-Pacific species complex of whistlers (Aves: Pachycephala). Molecular Ecology
Open this publication in new window or tab >>Reticulate and hybrid speciation is promoted by environmental instability in an Indo-Pacific species complex of whistlers (Aves: Pachycephala)
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(English)In: Molecular Ecology, ISSN 0962-1083, E-ISSN 1365-294XArticle in journal (Refereed) Submitted
Abstract [en]

Genomic studies have revealed introgressive hybridization as a common phenomenon across the tree of life, particularly among young radiations. As incipient speciation tends to be induced by vicariance events, it is assumed that introgressive hybridization is more frequent in young radiations in which allopatrically distributed species have a high probability of coming into secondary contact. In this study we utilize whole genomic data to investigate spatio-temporal introgression patterns in a songbird radiation that has colonized a highly dynamic island region in the Indo-Pacific. Some taxa within this radiation have colonized remote oceanic islands whereas others occur on landmasses and islands in the Sahul region that were periodically connected during Pleistocene periods of lower sea levels. Our results show that introgressive hybridization has been pervasive within this young radiation, despite prominent plumage differences between taxa. Geographical proximity has been an important factor for hybridization and we further find that species occupying islands in the environmentally unstable Sahul region exhibit particularly high signatures of introgressive hybridization. Yet, one species appears to have been shielded against hybridization, perhaps due to specific ecological specializations. Finally, we identify a hybrid species on an island where two oceanic radiations meet. Our results also caution against relying solely on analyses that only detect asymmetric introgression when examining systems with complex introgression histories. Collectively, our results support a growing body of literature that suggests that reticulate speciation is much more common than previously thought. This has implications for our understanding of species formation and their persistence through time.

Keywords
Hybridization, Birds, Population Dynamics, Speciation, Population Genetics, Genomics
National Category
Evolutionary Biology
Research subject
evolutionär genetik
Identifiers
urn:nbn:se:su:diva-242469 (URN)
Funder
Swedish Research Council, 2019-03900Knut and Alice Wallenberg Foundation, KAW 2020.0239
Available from: 2025-04-23 Created: 2025-04-23 Last updated: 2025-04-29
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0001-6582-3452

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