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Publications (10 of 12) Show all publications
Anderl, I., Ekström, J.-O., Tuomela, T., Rämet, M., Salminen, T. S. & Vesala, L. (2026). mTOR signaling regulates demand-adapted hematopoiesis and metabolic reprogramming required for an effective cellular immune response in Drosophila melanogaster larvae. PLOS Genetics, 22(3), Article ID e1012094.
Open this publication in new window or tab >>mTOR signaling regulates demand-adapted hematopoiesis and metabolic reprogramming required for an effective cellular immune response in Drosophila melanogaster larvae
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2026 (English)In: PLOS Genetics, ISSN 1553-7390, E-ISSN 1553-7404, Vol. 22, no 3, article id e1012094Article in journal (Refereed) Published
Abstract [en]

The evolutionarily conserved mechanistic Target of Rapamycin (mTOR) pathway connects energy and nutrient availability to growth, proliferation, differentiation, immunity and survival. Here, we investigated the role of the mTOR pathway in Drosophila hematopoiesis and immunity using genetic and transcriptomic analyses of peripheral larval blood cells (hemocytes). We show that blood cell-directed mTor expression induced lamellocyte differentiation as seen after parasitoid wasp infection. Genetic epistasis revealed that lamellocyte hematopoiesis downstream of mTor is mediated by the JNK and p38 pathways. Transcriptomic profiling showed largely similar changes in gene expression patterns of wasp infected and mTor overexpressing hemocytes. While mTOR signaling is necessary for proper lamellocyte differentiation, mTOR Complex 1 (mTORC1) activity is suppressed in mature lamellocytes. Our transcriptome data indicated that hemocyte activation is accompanied by a shift in metabolism towards aerobic glycolysis for energy production, the oxidative pentose phosphate pathway for NADPH recycling, ROS production and detoxification as well as glutaminolysis for glutathione production. Our data highlight the key role of mTOR in controlling blood cell fate in Drosophila.

Place, publisher, year, edition, pages
Public Library of Science (PLoS), 2026
National Category
Infectious Medicine
Identifiers
urn:nbn:se:umu:diva-252872 (URN)10.1371/journal.pgen.1012094 (DOI)001721916100002 ()41875141 (PubMedID)2-s2.0-105034912885 (Scopus ID)
Available from: 2026-05-05 Created: 2026-05-05 Last updated: 2026-05-05Bibliographically approved
Laurinmäki, P., Shakeel, S., Ekström, J.-O., Mohammadi, P., Hultmark, D. & Butcher, S. J. (2020). Structure of Nora virus at 2.7 angstrom resolution and implications for receptor binding, capsid stability and taxonomy. Scientific Reports, 10(1), Article ID 19675.
Open this publication in new window or tab >>Structure of Nora virus at 2.7 angstrom resolution and implications for receptor binding, capsid stability and taxonomy
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2020 (English)In: Scientific Reports, E-ISSN 2045-2322, Vol. 10, no 1, article id 19675Article in journal (Refereed) Published
Abstract [en]

Nora virus, a virus of Drosophila, encapsidates one of the largest single-stranded RNA virus genomes known. Its taxonomic affinity is uncertain as it has a picornavirus-like cassette of enzymes for virus replication, but the capsid structure was at the time for genome publication unknown. By solving the structure of the virus, and through sequence comparison, we clear up this taxonomic ambiguity in the invertebrate RNA virosphere. Despite the lack of detectable similarity in the amino acid sequences, the 2.7 angstrom resolution cryoEM map showed Nora virus to have T=1 symmetry with the characteristic capsid protein beta -barrels found in all the viruses in the Picornavirales order. Strikingly, alpha -helical bundles formed from the extended C-termini of capsid protein VP4B and VP4C protrude from the capsid surface. They are similar to signalling molecule folds and implicated in virus entry. Unlike other viruses of Picornavirales, no intra-pentamer stabilizing annulus was seen, instead the intra-pentamer stability comes from the interaction of VP4C and VP4B N-termini. Finally, intertwining of the N-termini of two-fold symmetry-related VP4A capsid proteins and RNA, provides inter-pentamer stability. Based on its distinct structural elements and the genetic distance to other picorna-like viruses we propose that Nora virus, and a small group of related viruses, should have its own family within the order Picornavirales.

Place, publisher, year, edition, pages
Nature Publishing Group, 2020
National Category
Structural Biology
Identifiers
urn:nbn:se:umu:diva-178100 (URN)10.1038/s41598-020-76613-1 (DOI)000595255700068 ()33184473 (PubMedID)2-s2.0-85095937120 (Scopus ID)
Funder
Wellcome trust, EM14263-1Swedish Research Council
Available from: 2021-01-05 Created: 2021-01-05 Last updated: 2026-05-05Bibliographically approved
Ekström, J.-O. & Hultmark, D. (2016). A Novel Strategy for Live Detection of Viral Infection in Drosophila melanogaster. Scientific Reports, 6, Article ID 26250.
Open this publication in new window or tab >>A Novel Strategy for Live Detection of Viral Infection in Drosophila melanogaster
2016 (English)In: Scientific Reports, E-ISSN 2045-2322, Vol. 6, article id 26250Article in journal (Refereed) Published
Abstract [en]

We have created a transgenic reporter for virus infection, and used it to study Nora virus infection in Drosophila melanogaster. The transgenic construct, Munin, expresses the yeast transcription factor Gal4, tethered to a transmembrane anchor via a linker that can be cleaved by a viral protease. In infected cells, liberated Gal4 will then transcribe any gene that is linked to a promoter with a UAS motif, the target for Gal4 transcription. For instance, infected cells will glow red in the offspring of a cross between the Munin stock and flies with a UAS-RFPnls transgene (expressing a red fluorescent protein). In such flies we show that after natural infection, via the faecal-oral route, 5-15% of the midgut cells are infected, but there is little if any infection elsewhere. By contrast, we can detect infection in many other tissues after injection of virus into the body cavity. The same principle could be applied for other viruses and it could also be used to express or suppress any gene of interest in infected cells.

National Category
Medical Biotechnology (with a focus on Cell Biology (including Stem Cell Biology), Molecular Biology, Microbiology, Biochemistry or Biopharmacy)
Identifiers
urn:nbn:se:umu:diva-123371 (URN)10.1038/srep26250 (DOI)000375996600001 ()27189868 (PubMedID)2-s2.0-84969916958 (Scopus ID)
Available from: 2016-07-04 Created: 2016-07-01 Last updated: 2026-05-05Bibliographically approved
Sadanandan, S. A., Ekström, J.-O., Jonna, V. R., Hofer, A. & Hultmark, D. (2016). VP3 is crucial for the stability of Nora virus virions. Virus Research, 223, 20-27
Open this publication in new window or tab >>VP3 is crucial for the stability of Nora virus virions
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2016 (English)In: Virus Research, ISSN 0168-1702, E-ISSN 1872-7492, Vol. 223, p. 20-27Article in journal (Refereed) Published
Abstract [en]

Nora virus is an enteric virus that causes persistent, non-pathological infection in Drosophila melanogaster. It replicates in the fly gut and is transmitted via the fecal-oral route. Nora virus has a single-stranded positive-sense RNA genome, which is translated in four open reading frames. Reading frame three encodes the VP3 protein, the structure and function of which we have investigated in this work. We have shown that VP3 is a trimer that has an α-helical secondary structure, with a functionally important coiled-coil domain. In order to identify the role of VP3 in the Nora virus life cycle, we constructed VP3-mutants using the cDNA clone of the virus. Our results show that VP3 does not have a role in the actual assembly of the virus particles, but virions that lack VP3 or harbor VP3 with a disrupted coiled coil domain are incapable of transmission via the fecal-oral route. Removing the region downstream of the putative coiled coil appears to have an effect on the fitness of the virus but does not hamper its replication or transmission. We also found that the VP3 protein and particularly the coiled coil domain are crucial for the stability of Nora virus virions when exposed to heat or proteases. Hence, we propose that VP3 is imperative to Nora virus virions as it confers stability to the viral capsid.

Place, publisher, year, edition, pages
Elsevier, 2016
Keywords
RNA viruses, Nora virus, Capsid stability, Virus biology
National Category
Immunology in the medical area
Identifiers
urn:nbn:se:umu:diva-124102 (URN)10.1016/j.virusres.2016.06.011 (DOI)000383826600003 ()27329665 (PubMedID)2-s2.0-84977667164 (Scopus ID)
Available from: 2016-07-17 Created: 2016-07-17 Last updated: 2026-05-05Bibliographically approved
Yang, H., Kronhamn, J., Ekstrom, J.-O., Korkut, G. G. & Hultmark, D. (2015). JAK/STAT signaling in Drosophila muscles controls the cellular immune response against parasitoid infection. EMBO Reports, 16(12), 1664-1672
Open this publication in new window or tab >>JAK/STAT signaling in Drosophila muscles controls the cellular immune response against parasitoid infection
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2015 (English)In: EMBO Reports, ISSN 1469-221X, E-ISSN 1469-3178, Vol. 16, no 12, p. 1664-1672Article in journal (Refereed) Published
Abstract [en]

The role of JAK/STAT signaling in the cellular immune response of Drosophila is not well understood. Here, we show that parasitoid wasp infection activates JAK/STAT signaling in somatic muscles of the Drosophila larva, triggered by secretion of the cytokines Upd2 and Upd3 from circulating hemocytes. Deletion of upd2 or upd3, but not the related os (upd1) gene, reduced the cellular immune response, and suppression of the JAK/STAT pathway in muscle cells reduced the encapsulation of wasp eggs and the number of circulating lamellocyte effector cells. These results suggest that JAK/STAT signaling in muscles participates in a systemic immune defense against wasp infection.

Keywords
Drosophila, innate immunity, JAK/STAT signaling, muscles
National Category
Medical Biotechnology (with a focus on Cell Biology (including Stem Cell Biology), Molecular Biology, Microbiology, Biochemistry or Biopharmacy)
Identifiers
urn:nbn:se:umu:diva-116103 (URN)10.15252/embr.201540277 (DOI)000368237100012 ()26412855 (PubMedID)2-s2.0-84954373011 (Scopus ID)
Available from: 2016-02-08 Created: 2016-02-08 Last updated: 2026-05-05Bibliographically approved
Zocher, G., Mistry, N., Frank, M., Hähnlein-Schick, I., Ekström, J.-O., Arnberg, N. & Stehle, T. (2014). A sialic acid binding site in a human picornavirus. PLoS Pathogens, 10(10), e1004401
Open this publication in new window or tab >>A sialic acid binding site in a human picornavirus
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2014 (English)In: PLoS Pathogens, ISSN 1553-7366, E-ISSN 1553-7374, Vol. 10, no 10, p. e1004401-Article in journal (Refereed) Published
Abstract [en]

The picornaviruses coxsackievirus A24 variant (CVA24v) and enterovirus 70 (EV70) cause continued outbreaks and pandemics of acute hemorrhagic conjunctivitis (AHC), a highly contagious eye disease against which neither vaccines nor antiviral drugs are currently available. Moreover, these viruses can cause symptoms in the cornea, upper respiratory tract, and neurological impairments such as acute flaccid paralysis. EV70 and CVA24v are both known to use 5-N-acetylneuraminic acid (Neu5Ac) for cell attachment, thus providing a putative link between the glycan receptor specificity and cell tropism and disease. We report the structures of an intact human picornavirus in complex with a range of glycans terminating in Neu5Ac. We determined the structure of the CVA24v to 1.40 angstrom resolution, screened different glycans bearing Neu5Ac for CVA24v binding, and structurally characterized interactions with candidate glycan receptors. Biochemical studies verified the relevance of the binding site and demonstrated a preference of CVA24v for alpha 2,6-linked glycans. This preference can be rationalized by molecular dynamics simulations that show that alpha 2,6-linked glycans can establish more contacts with the viral capsid. Our results form an excellent platform for the design of antiviral compounds to prevent AHC.

Place, publisher, year, edition, pages
Public library science, 2014
National Category
Microbiology in the medical area Immunology in the medical area
Identifiers
urn:nbn:se:umu:diva-97242 (URN)10.1371/journal.ppat.1004401 (DOI)000344548800012 ()2-s2.0-84908315694 (Scopus ID)
Available from: 2014-12-16 Created: 2014-12-12 Last updated: 2026-05-05Bibliographically approved
van Mierlo, J. T., Bronkhorst, A. W., Overheul, G. J., Sadanandan, S. A., Ekström, J.-O., Heestermans, M., . . . van Rij, R. P. (2012). Convergent evolution of argonaute-2 slicer antagonism in two distinct insect RNA viruses. PLoS Pathogens, 8(8), Article ID e1002872.
Open this publication in new window or tab >>Convergent evolution of argonaute-2 slicer antagonism in two distinct insect RNA viruses
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2012 (English)In: PLoS Pathogens, ISSN 1553-7366, E-ISSN 1553-7374, Vol. 8, no 8, article id e1002872Article in journal (Refereed) Published
Abstract [en]

RNA interference (RNAi) is a major antiviral pathway that shapes evolution of RNA viruses. We show here that Nora virus, a natural Drosophila pathogen, is both a target and suppressor of RNAi. We detected viral small RNAs with a signature of Dicer-2 dependent small interfering RNAs in Nora virus infected Drosophila. Furthermore, we demonstrate that the Nora virus VP1 protein contains RNAi suppressive activity in vitro and in vivo that enhances pathogenicity of recombinant Sindbis virus in an RNAi dependent manner. Nora virus VP1 and the viral suppressor of RNAi of Cricket paralysis virus (1A) antagonized Argonaute-2 (AGO2) Slicer activity of RNA induced silencing complexes pre-loaded with a methylated single-stranded guide strand. The convergent evolution of AGO2 suppression in two unrelated insect RNA viruses highlights the importance of AGO2 in antiviral defense.

National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:umu:diva-61306 (URN)10.1371/journal.ppat.1002872 (DOI)000308558000047 ()22916019 (PubMedID)2-s2.0-84866182888 (Scopus ID)
Available from: 2012-11-08 Created: 2012-11-08 Last updated: 2026-05-05Bibliographically approved
Ekström, J.-O., Habayeb, M. S., Srivastava, V., Kieselbach, T., Wingsle, G. & Hultmark, D. (2011). Drosophila Nora virus capsid proteins differ from those of other picorna-like viruses. Virus Research, 160(1-2), 51-58
Open this publication in new window or tab >>Drosophila Nora virus capsid proteins differ from those of other picorna-like viruses
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2011 (English)In: Virus Research, ISSN 0168-1702, E-ISSN 1872-7492, Vol. 160, no 1-2, p. 51-58Article in journal (Refereed) Published
Abstract [en]

The recently discovered Nora virus from Drosophila melanogaster is a single-stranded RNA virus. Its published genomic sequence encodes a typical picorna-like cassette of replicative enzymes, but no capsid proteins similar to those in other picorna-like viruses. We have now done additional sequencing at the termini of the viral genome, extending it by 455 nucleotides at the 5' end, but no more coding sequence was found. The completeness of the final 12,333-nucleotide sequence was verified by the production of infectious virus from the cloned genome. To identify the capsid proteins, we purified Nora virus particles and analyzed their proteins by mass spectrometry. Our results show that the capsid is built from three major proteins, VP4A, B and C, encoded in the fourth open reading frame of the viral genome. The viral particles also contain traces of a protein from the third open reading frame, VP3. VP4A and B are not closely related to other picorna-like virus capsid proteins in sequence, but may form similar jelly roll folds. VP4C differs from the others and is predicted to have an essentially α-helical conformation. In a related virus, identified from EST database sequences from Nasonia parasitoid wasps, VP4C is encoded in a separate open reading frame, separated from VP4A and B by a frame-shift. This opens a possibility that VP4C is produced in non-equimolar quantities. Altogether, our results suggest that the Nora virus capsid has a different protein organization compared to the order Picornavirales.

Place, publisher, year, edition, pages
Amsterdam: Elsevier, 2011
Keywords
RNA viruses, Picornavirales, Insect viruses, Capsid protein organization
National Category
Microbiology in the medical area
Identifiers
urn:nbn:se:umu:diva-45033 (URN)10.1016/j.virusres.2011.05.006 (DOI)21605604 (PubMedID)2-s2.0-80052184573 (Scopus ID)
Note
Available online 13 May 2011 Available from: 2011-06-22 Created: 2011-06-20 Last updated: 2026-05-05Bibliographically approved
Habayeb, M. S., Ekström, J.-O. & Hultmark, D. (2009). Nora virus persistent infections are not affected by the RNAi machinery.. PLOS ONE, 4(5), e5731
Open this publication in new window or tab >>Nora virus persistent infections are not affected by the RNAi machinery.
2009 (English)In: PLOS ONE, E-ISSN 1932-6203, Vol. 4, no 5, p. e5731-Article in journal (Refereed) Published
Abstract [en]

Drosophila melanogaster is widely used to decipher the innate immune system in response to various pathogens. The innate immune response towards persistent virus infections is among the least studied in this model system. We recently discovered a picorna-like virus, the Nora virus which gives rise to persistent and essentially symptom-free infections in Drosophila melanogaster. Here, we have used this virus to study the interaction with its host and with some of the known Drosophila antiviral immune pathways. First, we find a striking variability in the course of the infection, even between flies of the same inbred stock. Some flies are able to clear the Nora virus but not others. This phenomenon seems to be threshold-dependent; flies with a high-titer infection establish stable persistent infections, whereas flies with a lower level of infection are able to clear the virus. Surprisingly, we find that both the clearance of low-level Nora virus infections and the stability of persistent infections are unaffected by mutations in the RNAi pathways. Nora virus infections are also unaffected by mutations in the Toll and Jak-Stat pathways. In these respects, the Nora virus differs from other studied Drosophila RNA viruses.

National Category
Medical and Health Sciences
Identifiers
urn:nbn:se:umu:diva-30293 (URN)10.1371/journal.pone.0005731 (DOI)19478998 (PubMedID)2-s2.0-66749112342 (Scopus ID)
Available from: 2009-12-15 Created: 2009-12-15 Last updated: 2026-05-05Bibliographically approved
Habayeb, M., Cantera, R., Casanova, G., Ekström, J.-O., Albright, S. & Hultmark, D. (2009). The Drosophila Nora virus is an enteric virus, transmitted via feces. Journal of Invertebrate Pathology, 101, 29-33
Open this publication in new window or tab >>The Drosophila Nora virus is an enteric virus, transmitted via feces
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2009 (English)In: Journal of Invertebrate Pathology, ISSN 0022-2011, E-ISSN 1096-0805, Vol. 101, p. 29-33Article in journal (Refereed) Published
Abstract [en]

 The biology of the Drosophila viruses has not been intensely investigated. Here we have investigated the biology of the Nora virus, a persistent Drosophila virus. We find that injected Nora virus is able to replicate in the files, reaching a high titer that is maintained in the next generation. There is a remarkable variation in the viral loads of individual flies in persistently infected stocks; the titers can differ by three orders of magnitude. The Nora virus is mainly found in the intestine of infected flies, and the histology of these infected intestines show increased vacuolization. The virus is excreted in the feces and is horizontally transmitted. The Nora virus infection has a very mild effect on the longevity of the flies, and no significant effect on the number of eggs laid and the percent of eggs that develop to adults.

Keywords
Drosophila, Nora virus, Horizontal transmission, Enteric virus, Picorna-like virus
National Category
Medical and Health Sciences
Identifiers
urn:nbn:se:umu:diva-22146 (URN)10.1016/j.jip.2009.02.003 (DOI)2-s2.0-64449088820 (Scopus ID)
Available from: 2009-04-24 Created: 2009-04-24 Last updated: 2026-05-05Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0009-0005-2590-7324

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