Logo: to the web site of Uppsala University

uu.sePublications from Uppsala University
Change search
Link to record
Permanent link

Direct link
Medina-Jiménez, Brenda IreneORCID iD iconorcid.org/0000-0002-9472-4928
Alternative names
Publications (10 of 12) Show all publications
Medina-Jiménez, B. I., Kwak, H.-J., Aryal, Y. P., Lee, C.-J., Jeong, G.-H., Pyo, I.-H., . . . Cho, S.-J. (2025). Hedgehog Signaling during Gut Formation in the Freshwater Leech, Helobdella austinensis. Cells Tissues Organs, 214(3), 194-205
Open this publication in new window or tab >>Hedgehog Signaling during Gut Formation in the Freshwater Leech, Helobdella austinensis
Show others...
2025 (English)In: Cells Tissues Organs, ISSN 1422-6405, E-ISSN 1422-6421, Vol. 214, no 3, p. 194-205Article in journal (Refereed) Published
Abstract [en]

Introduction: The hedgehog signaling pathway plays a crucial role in inducing segment polarity through cell-cell interactions in various metazoans, including arthropods and annelids. However, its involvement in organogenesis and segmentation among lophotrochozoans remains inconsistent. This study aimed to explore the role of the hedgehog gene during gut development in the freshwater leech, Helobdella austinensis.

Methods: Developmental RT-PCR and in situ hybridization were performed to examine the expressions of hedgehog genes. In addition, embryos were treated with cyclopamine (a hedgehog signaling antagonist) and purmorphamine (a Smo agonist) to examine the potential interactions between Helobdella orthologs to hedgehog and two NKL genes: Hau-NK2 and Hau-NK4.

Results: We examined the expressions of four core pathway members – Hedgehog (Hh), Patched (Ptc), Smoothened (Smo), and the downstream transcription factor Gli – spatiotemporally during the embryonic stages of H. austinensis. All four genes were expressed in the developing gut and proboscis during organogenesis but not during the segmentation stage. Additionally, the treatment of embryos with cyclopamine and purmorphamine revealed that NK genes are regulated by hedgehog signaling. Furthermore, NK2 and NK4 were expressed in the developing gut rather than in a segmental stripe pattern.

Conclusion: This study confirms that the hedgehog signaling pathway is associated with gut development in the freshwater leech, H. austinensis. The expression patterns of hedgehog pathway genes and their interaction with NK genes suggest a role of hedgehog signaling in regulating gut development rather than segmentation in the freshwater leeches.

Place, publisher, year, edition, pages
S. Karger, 2025
Keywords
Gut formation, Hedgehog signaling, Leech, Lophotrochozoans, NKL genes
National Category
Genetics and Genomics Cell and Molecular Biology Developmental Biology
Identifiers
urn:nbn:se:uu:diva-569088 (URN)10.1159/000543782 (DOI)001447846300001 ()39929152 (PubMedID)2-s2.0-105003399696 (Scopus ID)
Note

De tre första författarna delar förstaförfattarskapet

Available from: 2025-10-09 Created: 2025-10-09 Last updated: 2025-10-09Bibliographically approved
Medina-Jiménez, B. I., Budd, G. E. & Janssen, R. (2025). Single‐cell sequencing reveals potential novel insights into appendage‐patterning and joint‐development in a spider. Developmental Dynamics, Article ID dvdy.70069.
Open this publication in new window or tab >>Single‐cell sequencing reveals potential novel insights into appendage‐patterning and joint‐development in a spider
2025 (English)In: Developmental Dynamics, ISSN 1058-8388, E-ISSN 1097-0177, article id dvdy.70069Article in journal (Refereed) Epub ahead of print
Abstract [en]

Background

Jointed appendages represent one of the key innovations of arthropods, and thus understanding the development and evolution of these structures is important for the understanding of the evolutionary success of Arthropoda. In this paper, we analyze a cell cluster that was identified in a previous single-cell sequencing (SCS) experiment on embryos of the spider Parasteatoda tepidariorum. This cell cluster is characterized by marker genes that suggest a role in appendage patterning and joint development.

Results

We analyzed the expression profiles of these marker genes showing that they are expressed in the developing appendages and in a pattern that suggests a potential function during joint development. Several of the investigated genes represent new and unexpected factors such as dysfusion (dysf), spätzle3 (spz3), seven-up (svp). In order to study their evolutionary origin, we also investigated orthologs of the identified appendage-patterning genes in the harvestman Phalangium opilio, a distantly related chelicerate.

Conclusion

Our work highlights the usefulness of SCS experiments for the identification of potential new genetic factors that are involved in specific developmental processes. The current data provide potential new insights into the gene regulatory networks that underlie arthropod joint development.

Place, publisher, year, edition, pages
John Wiley & Sons, 2025
National Category
Biological Sciences
Identifiers
urn:nbn:se:uu:diva-575990 (URN)10.1002/dvdy.70069 (DOI)2-s2.0-105012764495 (Scopus ID)
Funder
Swedish Research Council, 161603657
Available from: 2026-01-14 Created: 2026-01-14 Last updated: 2026-04-17
Medina-Jiménez, B. I., Budd, G. E. & Janssen, R. (2024). Single-cell RNA sequencing of mid-to-late stage spider embryos: new insights into spider development. BMC Genomics, 25, Article ID 150.
Open this publication in new window or tab >>Single-cell RNA sequencing of mid-to-late stage spider embryos: new insights into spider development
2024 (English)In: BMC Genomics, E-ISSN 1471-2164, Vol. 25, article id 150Article in journal (Refereed) Published
Abstract [en]

Background

The common house spider Parasteatoda tepidariorum represents an emerging new model organism of arthropod evolutionary and developmental (EvoDevo) studies. Recent technical advances have resulted in the first single-cell sequencing (SCS) data on this species allowing deeper insights to be gained into its early development, but mid-to-late stage embryos were not included in these pioneering studies.

Results

Therefore, we performed SCS on mid-to-late stage embryos of Parasteatoda and characterized resulting cell clusters by means of in-silico analysis (comparison of key markers of each cluster with previously published information on these genes). In-silico prediction of the nature of each cluster was then tested/verified by means of additional in-situ hybridization experiments with additional markers of each cluster.

Conclusions

Our data show that SCS data reliably group cells with similar genetic fingerprints into more or less distinct clusters, and thus allows identification of developing cell types on a broader level, such as the distinction of ectodermal, mesodermal and endodermal cell lineages, as well as the identification of distinct developing tissues such as subtypes of nervous tissue cells, the developing heart, or the ventral sulcus (VS). In comparison with recent other SCS studies on the same species, our data represent later developmental stages, and thus provide insights into different stages of developing cell types and tissues such as differentiating neurons and the VS that are only present at these later stages.

Place, publisher, year, edition, pages
BioMed Central (BMC), 2024
Keywords
Single-cell sequencing, Spider development, Nervous system, Genetic fingerprint, Parasteatoda tepidariorum
National Category
Developmental Biology Bioinformatics and Computational Biology
Identifiers
urn:nbn:se:uu:diva-523429 (URN)10.1186/s12864-023-09898-x (DOI)001281686900002 ()38326752 (PubMedID)2-s2.0-85184707233 (Scopus ID)
Funder
Uppsala UniversityEU, Horizon 2020, 766053Swedish National Infrastructure for Computing (SNIC)UPPMAXSwedish Research Council, 2018‑05973
Available from: 2024-02-19 Created: 2024-02-19 Last updated: 2025-02-17Bibliographically approved
Medina-Jiménez, B. I. (2024). Single-cell RNA sequencing provides novel insights into spider development and represents an innovative alternative to study the evolution and development of panarthropods. (Doctoral dissertation). Uppsala: Acta Universitatis Upsaliensis
Open this publication in new window or tab >>Single-cell RNA sequencing provides novel insights into spider development and represents an innovative alternative to study the evolution and development of panarthropods
2024 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Panarthropoda is a monophyletic group of invertebrate animals with a segmented body, paired appendages, dorsal brain, and ventral nerve cords. In order to study the mechanisms underpining their evolution, I study the genetic factors that drive their development. A typical research strategy is the candidate gene approach, in which orthologs of genes from a well established model organisms such as the fruit fly Drosophila melanogaster are studied in other more or less related species for comparison.

Recently developed single-cell RNA sequencing technologies allow the profiling of gene expression on the level of individual cells, and thus provide a much more detailed insight into gene expression.

In Paper-I, I applied the candidate gene approach to study the potential role of two transcription factors, called tiptop/teashirt and spalt, as trunk-selectors in panarthropods.

In Paper-II, I applied single-cell RNA sequencing to obtain the transcriptome of embryonic cells from spiders at mid-to-late stage in development. This generated a gene expression/gene-cell matrix that I analyzed to define the identity of cell clusters.

In Paper-III, I present an improved SCS data analysis based on the data presented in Paper-II. This revealed a number of new cell clusters including a cluster that is characterized by known eye-developmental genes, genes that have previously not been identified as eye-developmental genes, and hitherto un-investigated genes. My in-situ hybridization analyis shows that these genes are potential novel factors of eye development in the spider.

This work constitutes a successful example of the advantages of applying scRNA-seq in the study of panarthropod evolution and development.

Place, publisher, year, edition, pages
Uppsala: Acta Universitatis Upsaliensis, 2024. p. 55
Series
Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Science and Technology, ISSN 1651-6214 ; 2370
Keywords
panarthropod, spider embryo, single-cell RNA sequencing, EvoDevo, candidate gene approach, gene expression, cluster marker
National Category
Natural Sciences Biological Sciences
Research subject
Biology with specialization in Molecular Biology; Earth Science with specialization in Historical Geology and Palaeontology
Identifiers
urn:nbn:se:uu:diva-523957 (URN)978-91-513-2051-9 (ISBN)
Public defence
2024-04-22, Axel Hambergsalen, Uppsala, 08:00 (English)
Opponent
Supervisors
Funder
EU, Horizon 2020, 766053
Available from: 2024-03-21 Created: 2024-02-27 Last updated: 2024-04-15
Medina-Jiménez, B. I., Budd, G. E., Pechmann, M., Posnien, N. & Janssen, R. (2024). Single-cell sequencing suggests a conserved function of Hedgehog-signalling in spider eye development. EvoDevo, 15(1), Article ID 11.
Open this publication in new window or tab >>Single-cell sequencing suggests a conserved function of Hedgehog-signalling in spider eye development
Show others...
2024 (English)In: EvoDevo, E-ISSN 2041-9139, Vol. 15, no 1, article id 11Article in journal (Refereed) Published
Abstract [en]

Background

Spiders evolved different types of eyes, a pair of primary eyes that are usually forward pointing, and three pairs of secondary eyes that are typically situated more posterior and lateral on the spider’s head. The best understanding of arthropod eye development comes from the vinegar fly Drosophila melanogaster, the main arthropod model organism, that also evolved different types of eyes, the larval eyes and the ocelli and compound eyes of the imago. The gene regulatory networks that underlie eye development in this species are well investigated revealing a conserved core network, but also show several differences between the different types of eyes. Recent candidate gene approaches identified a number of conserved genes in arthropod eye development, but also revealed crucial differences including the apparent lack of some key factors in some groups of arthropods, including spiders.

Results

Here, we re-analysed our published scRNA sequencing data and found potential key regulators of spider eye development that were previously overlooked. Unlike earlier research on this topic, our new data suggest that Hedgehog (Hh)-signalling is involved in eye development in the spider Parasteatoda tepidariorum. By investigating embryonic gene expression in representatives of all main groups of spiders, we demonstrate that this involvement is conserved in spiders. Additionally, we identified genes that are expressed in the developing eyes of spiders, but that have not been studied in this context before.

Conclusion

Our data show that single-cell sequencing represents a powerful method to gain deeper insight into gene regulatory networks that underlie the development of lineage-specific organs such as the derived set of eyes in spiders. Overall, we gained deeper insight into spider eye development, as well as the evolution of arthropod visual system formation.

Place, publisher, year, edition, pages
BioMed Central (BMC), 2024
Keywords
Arthropod evolution, Arthropod head development, Eye development, Visual system development
National Category
Zoology
Identifiers
urn:nbn:se:uu:diva-540392 (URN)10.1186/s13227-024-00230-6 (DOI)001321901800001 ()39327634 (PubMedID)
Funder
Swedish Research Council, 2022-03522EU, Horizon 2020, 766053Uppsala UniversityGerman Research Foundation (DFG), 503325252
Available from: 2024-10-15 Created: 2024-10-15 Last updated: 2024-10-15Bibliographically approved
Kwak, H.-J., Jimenez, B. I., Park, S. C., Kim, J.-H., Jeong, G.-H., Jeon, M.-J., . . . Cho, S.-J. (2023). Slit-Robo expression in the leech nervous system: insights into eyespot evolution. Cell & Bioscience, 13, Article ID 70.
Open this publication in new window or tab >>Slit-Robo expression in the leech nervous system: insights into eyespot evolution
Show others...
2023 (English)In: Cell & Bioscience, ISSN 2045-3701, Vol. 13, article id 70Article in journal (Refereed) Published
Abstract [en]

Background: Slit and Robo are evolutionarily conserved ligand and receptor proteins, respectively, but the number of slit and robo gene paralogs varies across recent bilaterian genomes. Previous studies indicate that this ligand-receptor complex is involved in axon guidance. Given the lack of data regarding Slit/Robo in the Lophotrochozoa compared to Ecdysozoa and Deuterostomia, the present study aims to identify and characterize the expression of Slit/Robo orthologs in leech development.

Results: We identified one slit (Hau-slit), and two robo genes (Hau-robo1 and Hau-robo2), and characterized their expression spatiotemporally during the development of the glossiphoniid leech Helobdella austinensis. Throughout segmentation and organogenesis, Hau-slit and Hau-robo1 are broadly expressed in complex and roughly complementary patterns in the ventral and dorsal midline, nerve ganglia, foregut, visceral mesoderm and/or endoderm of the crop, rectum and reproductive organs. Before yolk exhaustion, Hau-robo1 is also expressed where the pigmented eye spots will later develop, and Hau-slit is expressed in the area between these future eye spots. In contrast, Hau-robo2 expression is extremely limited, appearing first in the developing pigmented eye spots, and later in the three additional pairs of cryptic eye spots in head region that never develop pigment. Comparing the expression of robo orthologs between H. austinensis and another glossiphoniid leech, Alboglossiphonia lata allows to that robo1 and robo2 operate combinatorially to differentially specify pigmented and cryptic eyespots within the glossiphoniid leeches.

Conclusions: Our results support a conserved role in neurogenesis, midline formation and eye spot development for Slit/Robo in the Lophotrochozoa, and provide relevant data for evo-devo studies related to nervous system evolution.

Place, publisher, year, edition, pages
BioMed Central (BMC)BMC, 2023
Keywords
Slit, Robo, Gene duplication, Axon guidance, Eyespot
National Category
Cell Biology
Identifiers
urn:nbn:se:uu:diva-501170 (URN)10.1186/s13578-023-01019-1 (DOI)000962182800001 ()37013648 (PubMedID)
Available from: 2023-05-04 Created: 2023-05-04 Last updated: 2024-01-15Bibliographically approved
Jimenez, B. I., Budd, G. & Janssen, R. (2021). Panarthropod tiptop/teashirt and spalt orthologs and their potential role as "trunk"-selector genes. EvoDevo, 12, Article ID 7.
Open this publication in new window or tab >>Panarthropod tiptop/teashirt and spalt orthologs and their potential role as "trunk"-selector genes
2021 (English)In: EvoDevo, E-ISSN 2041-9139, Vol. 12, article id 7Article in journal (Refereed) Published
Abstract [en]

Background: In the vinegar fly Drosophila melanogaster, the homeodomain containing transcription factor Teashirt (Tsh) appears to specify trunk identity in concert with the function of the Hox genes. While in Drosophila there is a second gene closely related to tsh, called tiptop (tio), in other arthropods species only one copy exists (called tio/tsh). The expression of tsh and tio/tsh, respectively, is surprisingly similar among arthropods suggesting that its function as trunk selector gene may be conserved. Other research, for example on the beetle Tribolium castaneum, questions even conservation of Tsh function among insects. The zinc-finger transcription factor Spalt (Sal) is involved in the regulation of Drosophila tsh, but this regulatory interaction does not appear to be conserved in Tribolium either. Whether the function and interaction of tsh and sal as potential trunk-specifiers, however, is conserved is still unclear because comparative studies on sal expression (except for Tribolium) are lacking, and functional data are (if at all existing) restricted to Insecta.

Results: Here, we provide additional data on arthropod tsh expression, show the first data on onychophoran tio/tsh expression, and provide a comprehensive investigation on sal expression patterns in arthropods and an onychophoran.

Conclusions: Our data support the idea that tio/tsh genes are involved in the development of "trunk" segments by regulating limb development. Our data suggest further that the function of Sal is indeed unlikely to be conserved in trunk vs head development like in Drosophila, but early expression of sal is in line with a potential homeotic function, at least in Arthropoda.

Place, publisher, year, edition, pages
BioMed Central (BMC)BMC, 2021
Keywords
Arthropod development, Hox, Homeotic gene, Trunk-selector, Panarthropoda, Onychophora
National Category
Developmental Biology
Identifiers
urn:nbn:se:uu:diva-445423 (URN)10.1186/s13227-021-00177-y (DOI)000657313700001 ()34078450 (PubMedID)
Funder
Swedish Research Council, 621-201504726EU, Horizon 2020, 766053
Available from: 2021-06-14 Created: 2021-06-14 Last updated: 2024-02-27Bibliographically approved
Medina Jimenez, B. I. (2021). Single-cell RNA sequencing as a tool to study panarthropod evolution. (Licentiate dissertation). Uppsala: Department of Earth Sciences
Open this publication in new window or tab >>Single-cell RNA sequencing as a tool to study panarthropod evolution
2021 (English)Licentiate thesis, comprehensive summary (Other academic)
Abstract [en]

Panarthropoda is a monophyletic group comprised of arthropods and lobopods, molting animals with a segmented body, paired appendages, dorsal brain, and ventral nerve cords. Evolutionary Developmental Biology (EvoDevo) is an interdisciplinary field that seeks to understand how changes in development form the basis for variations in morphology and phenotypic evolution, including the genetic network underlying these processes. To study the evolution of panarthropods from such an EvoDevo perspective, one typically uses standard molecular techniques. A first step here is to investigate the expression of a gene of interest in order to find out where and when it is transcribed during development. A hallmark of EvoDevo studies is its comparative character, often with respect to model organisms such as the fruit fly Drosophila melanogaster.

Recently developed single-cell RNA sequencing technologies allow the profiling of a plethora of gene expression on the level of individual cells, and thus provide a much more detailed insight into gene expression.

In Paper I, I applied standard molecular techniques used in EvoDevo research such as PCR, gene cloning, probe synthesis and whole mount in situ hybridization, to investigate the embryonic expression patterns of the tiptop/teashirt (tio/tsh) and spalt (sal) genes in a range of arthropods representing all main groups of this phylum, and an onychophoran. In the arthropod model Drosophila, these genes act as trunk-specifiers, and the objective of my work was to find out if this is conserved in Arthropoda or even Panarthropoda as a whole. I provide comprehensive data on arthropod tio/tsh and sal expression, including the first data from an onychophoran. The results support the idea that tio/tsh genes are involved in the development of ‘trunk’ segments by regulating limb development. In addition, my data suggest that the function of Sal is unlikely to be conserved in trunk vs head development. Early expression of sal, however, is in line with a potential homeotic function of this gene, at least in Arthropoda.

In Paper II, I provide an embryonic tissue dissociation protocol for embryos of the common house spider Parasteatoda tepidariorum that I developed and that I successfully applied for single-cell RNA sequencing. In addition, I report on the progress of this experiment, and provide and discuss preliminary results.

Place, publisher, year, edition, pages
Uppsala: Department of Earth Sciences, 2021. p. 46
Keywords
Single-cell RNA sequencing, EvoDevo, gene expression, tissue dissociation, cell capture
National Category
Developmental Biology Evolutionary Biology Biochemistry Molecular Biology
Research subject
Biology with specialization in Molecular Biology; Biology with specialization in Molecular Evolution
Identifiers
urn:nbn:se:uu:diva-453692 (URN)
Presentation
2021-11-17, Luftrummet (GL 332), Institutionen för geovetenskaper, Paleobiologi. Villavägen 16, Uppsala, 13:00 (English)
Opponent
Supervisors
Funder
EU, Horizon 2020, 766053
Available from: 2021-10-26 Created: 2021-09-29 Last updated: 2025-02-20Bibliographically approved
Han, Y.-H., Ryu, K.-B., Jimenez, B. I., Kim, J., Lee, H.-Y. & Cho, S.-J. (2020). Muscular Development in Urechis unicinctus (Echiura, Annelida). International Journal of Molecular Sciences, 21(7), Article ID 2306.
Open this publication in new window or tab >>Muscular Development in Urechis unicinctus (Echiura, Annelida)
Show others...
2020 (English)In: International Journal of Molecular Sciences, ISSN 1661-6596, E-ISSN 1422-0067, Vol. 21, no 7, article id 2306Article in journal (Refereed) Published
Abstract [en]

Echiura is one of the most intriguing major subgroups of phylum Annelida because, unlike most other annelids, echiuran adults lack metameric body segmentation. Urechis unicinctus lives in U-shape burrows of soft sediments. Little is known about the molecular mechanisms underlying the development of U. unicinctus. Herein, we overviewed the developmental process from zygote to juvenile U. unicinctus using immunohistochemistry and F-actin staining for the nervous and muscular systems, respectively. Through F-actin staining, we found that muscle fibers began to form in the trochophore phase and that muscles for feeding were produced first. Subsequently, in the segmentation larval stage, the transversal muscle was formed in the shape of a ring in an anterior-to-posterior direction with segment formation, as well as a ventromedian muscle for the formation of a ventral nerve cord. After that, many muscle fibers were produced along the entire body and formed the worm-shaped larva. Finally, we investigated the spatiotemporal expression of Uun_st-mhc, Uun_troponin I, Uun_calponin, and Uun_twist genes found in U. unicinctus. During embryonic development, the striated and smooth muscle genes were co-expressed in the same region. However, the adult body wall muscles showed differential gene expression of each muscle layer. The results of this study will provide the basis for the understanding of muscle differentiation in Echiura.

Place, publisher, year, edition, pages
MDPI, 2020
Keywords
Echiura, Urechis unicinctus, musculature, striated muscle, smooth muscle
National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:uu:diva-414301 (URN)10.3390/ijms21072306 (DOI)000535574200048 ()32225111 (PubMedID)
Available from: 2020-07-27 Created: 2020-07-27 Last updated: 2022-02-10Bibliographically approved
Kwak, H.-J., Park, J.-S., Jimenez, B. I., Park, S. C. & Cho, S.-J. (2019). Spatiotemporal Expression of Anticoagulation Factor Antistasin in Freshwater Leeches. International Journal of Molecular Sciences, 20(16), Article ID 3994.
Open this publication in new window or tab >>Spatiotemporal Expression of Anticoagulation Factor Antistasin in Freshwater Leeches
Show others...
2019 (English)In: International Journal of Molecular Sciences, ISSN 1661-6596, E-ISSN 1422-0067, Vol. 20, no 16, article id 3994Article in journal (Refereed) Published
Abstract [en]

Antistasin, which was originally discovered in the salivary glands of the Mexican leech Haementeria officinalis, was newly isolated from Helobdella austinensis. To confirm the temporal expression of antistasin during embryogenesis, we carried out semi-quantitative RT-PCR. Hau-antistasin1 was uniquely expressed at stage 4 of the cleavage and was strongly expressed in the late stages of organogenesis, as were other antistasin members. In order to confirm the spatial expression of antistasin, we performed fluorescence in situ hybridization in the late stages of organogenesis. The expression of each antistasin in the proboscis showed a similar pattern and varied in expression in the body. In addition, the spatial expression of antistasin orthologs in different leeches showed the possibility of different function across leech species. Hau-antistasin1 was expressed in the same region as hedgehog, which is a known mediator of signal transduction pathway. Hau-antistasin1 is probably a downstream target of Hedgehog signaling, involved in segment polarity signal pathway.

Place, publisher, year, edition, pages
MDPI, 2019
Keywords
Antistasin, Helobdella, in situ hybridization, expression, hedgehog signaling
National Category
Genetics and Genomics
Identifiers
urn:nbn:se:uu:diva-394639 (URN)10.3390/ijms20163994 (DOI)000484411100151 ()31426335 (PubMedID)
Available from: 2019-10-17 Created: 2019-10-17 Last updated: 2025-02-07Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-9472-4928

Search in DiVA

Show all publications