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Publications (10 of 13) Show all publications
Carreras-Puigvert, J., Zitnik, M., Jemth, A.-S., Carter, M., Unterlass, J. E., Hallström, B., . . . Helleday, T. (2017). A comprehensive structural, biochemical and biological profiling of the human NUDIX hydrolase family. Nature Communications, 8, Article ID 1541.
Open this publication in new window or tab >>A comprehensive structural, biochemical and biological profiling of the human NUDIX hydrolase family
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2017 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 8, article id 1541Article in journal (Refereed) Published
Abstract [en]

The NUDIX enzymes are involved in cellular metabolism and homeostasis, as well as mRNA processing. Although highly conserved throughout all organisms, their biological roles and biochemical redundancies remain largely unclear. To address this, we globally resolve their individual properties and inter-relationships. We purify 18 of the human NUDIX proteins and screen 52 substrates, providing a substrate redundancy map. Using crystal structures, we generate sequence alignment analyses revealing four major structural classes. To a certain extent, their substrate preference redundancies correlate with structural classes, thus linking structure and activity relationships. To elucidate interdependence among the NUDIX hydrolases, we pairwise deplete them generating an epistatic interaction map, evaluate cell cycle perturbations upon knockdown in normal and cancer cells, and analyse their protein and mRNA expression in normal and cancer tissues. Using a novel FUSION algorithm, we integrate all data creating a comprehensive NUDIX enzyme profile map, which will prove fundamental to understanding their biological functionality.

Keywords
Cellular signalling networks, Hydrolases, Molecular biology
National Category
Biochemistry Molecular Biology
Identifiers
urn:nbn:se:su:diva-149800 (URN)10.1038/s41467-017-01642-w (DOI)000415323000014 ()29142246 (PubMedID)2-s2.0-85034433549 (Scopus ID)
Available from: 2017-12-19 Created: 2017-12-19 Last updated: 2025-02-20Bibliographically approved
Gustafsson, R., Berntsson, R. P. A., Martínez-Carranza, M., El Tekle, G., Odegrip, R., Johnson, E. A. & Stenmark, P. (2017). Crystal structures of OrfX2 and P47 from a Botulinum neurotoxin OrfX-type gene cluster. FEBS Letters, 591(22), 3781-3792
Open this publication in new window or tab >>Crystal structures of OrfX2 and P47 from a Botulinum neurotoxin OrfX-type gene cluster
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2017 (English)In: FEBS Letters, ISSN 0014-5793, E-ISSN 1873-3468, Vol. 591, no 22, p. 3781-3792Article in journal (Refereed) Published
Abstract [en]

Botulinum neurotoxins are highly toxic substances and are all encoded together with one of two alternative gene clusters, the HA or the OrfX gene cluster. Very little is known about the function and structure of the proteins encoded in the OrfX gene cluster, which in addition to the toxin contains five proteins (OrfX1, OrfX2, OrfX3, P47, and NTNH). We here present the structures of OrfX2 and P47, solved to 2.1 and 1.8 Å, respectively. We show that they belong to the TULIP protein superfamily, which are often involved in lipid binding. OrfX1 and OrfX2 were both found to bind phosphatidylinositol lipids.

Keywords
botulinum neurotoxin, Crystallography, gene cluster, TULIP, X-ray
National Category
Structural Biology Biochemistry Molecular Biology
Research subject
Biochemistry
Identifiers
urn:nbn:se:su:diva-150675 (URN)10.1002/1873-3468.12889 (DOI)000416726600008 ()
Funder
Swedish Research Council, 2014-5667Wenner-Gren FoundationsSwedish Cancer Society
Available from: 2018-01-02 Created: 2018-01-02 Last updated: 2025-02-20Bibliographically approved
Tao, L., Peng, L., Berntsson, R.-A. P. -., Liu, S. M., Park, S., Yu, F., . . . Dong, M. (2017). Engineered botulinum neurotoxin B with improved efficacy for targeting human receptors. Nature Communications, 8, Article ID 53.
Open this publication in new window or tab >>Engineered botulinum neurotoxin B with improved efficacy for targeting human receptors
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2017 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 8, article id 53Article in journal (Refereed) Published
Abstract [en]

Botulinum neurotoxin B is a Food and Drug Administration-approved therapeutic toxin. However, it has lower binding affinity toward the human version of its major receptor, synaptotagmin II (h-Syt II), compared to mouse Syt II, because of a residue difference. Increasing the binding affinity to h-Syt II may improve botulinum neurotoxin B's therapeutic efficacy and reduce adverse effects. Here we utilized the bacterial adenylate cyclase two-hybrid method and carried out a saturation mutagenesis screen in the Syt II-binding pocket of botulinum neurotoxin B. The screen identifies E1191 as a key residue: replacing it with M/C/V/Q enhances botulinum neurotoxin B binding to human synaptotagmin II. Adding S1199Y/W or W1178Q as a secondary mutation further increases binding affinity. Mutant botulinum neurotoxin B containing E1191M/S1199Y exhibits similar to 11-fold higher efficacy in blocking neurotransmission than wild-type botulinum neurotoxin B in neurons expressing human synaptotagmin II, demonstrating that enhancing receptor binding increases the overall efficacy at functional levels. The engineered botulinum neurotoxin B provides a platform to develop therapeutic toxins with improved efficacy.

Keywords
Molecular medicine, Protein design, Proteins, Recombinant protein therapy
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-145997 (URN)10.1038/s41467-017-00064-y (DOI)000404575700003 ()
Available from: 2017-08-28 Created: 2017-08-28 Last updated: 2023-03-28Bibliographically approved
Hamark, C., Berntsson, R.-A. P. -., Masuyer, G., Henriksson, L. M., Gustafsson, R., Stenmark, P. & Widmalm, G. (2017). Glycans Confer Specificity to the Recognition of Ganglioside Receptors by Botulinum Neurotoxin A. Journal of the American Chemical Society, 139(1), 218-230
Open this publication in new window or tab >>Glycans Confer Specificity to the Recognition of Ganglioside Receptors by Botulinum Neurotoxin A
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2017 (English)In: Journal of the American Chemical Society, ISSN 0002-7863, E-ISSN 1520-5126, Vol. 139, no 1, p. 218-230Article in journal (Refereed) Published
Abstract [en]

The highly poisonous botulinum neurotoxins, produced by the bacterium Clostridium botulinum, act on their hosts by a high-affinity association to two receptors on neuronal cell surfaces as the first step of invasion. The glycan motifs of gangliosides serve as initial coreceptors for these protein complexes, whereby a membrane protein receptor is bound. Herein we set out to characterize the carbohydrate minimal binding epitope of the botulinum neurotoxin serotype A. By means of ligand-based NMR spectroscopy, X-ray crystallography, computer simulations, and isothermal titration calorimetry, a screening of ganglioside analogues together with a detailed characterization of various carbohydrate ligand complexes with the toxin were accomplished. We show that the representation of the glycan epitope to the protein affects the details of binding. Notably, both branches of the oligosaccharide GD la can associate to botulinum neurotoxin serotype A when expressed as individual trisaccharides. It is, however, the terminal branch of GD1a as well as this trisaccharide motif alone, corresponding to the sialyl-Thomsen-Friedenreich antigen, that represents the active ligand epitope, and these compounds bind to the neurotoxin with a high degree of predisposition but with low affinities. This finding does not correlate with the oligosaccharide moieties having a strong contribution to the total affinity, which was expected to be the case. We here propose that the glycan part of the ganglioside receptors mainly provides abundance and specificity, whereas the interaction with the membrane itself and protein receptor brings about the strong total binding of the toxin to the neuronal membrane.

Place, publisher, year, edition, pages
American Chemical Society (ACS), 2017
National Category
Biological Sciences Chemical Sciences
Research subject
Biochemistry
Identifiers
urn:nbn:se:su:diva-140215 (URN)10.1021/jacs.6b09534 (DOI)000392036900039 ()27958736 (PubMedID)
Funder
Swedish Research CouncilKnut and Alice Wallenberg FoundationWenner-Gren Foundations
Available from: 2017-03-07 Created: 2017-03-07 Last updated: 2022-02-28Bibliographically approved
Zhang, S., Berntsson, R.-A. P. ., Tepp, W. H., Tao, L., Johnson, E. A., Stenmark, P. & Dong, M. (2017). Structural basis for the unique ganglioside and cell membrane recognition mechanism of botulinum neurotoxin DC. Nature Communications, 8, Article ID 1637.
Open this publication in new window or tab >>Structural basis for the unique ganglioside and cell membrane recognition mechanism of botulinum neurotoxin DC
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2017 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 8, article id 1637Article in journal (Refereed) Published
Abstract [en]

Botulinum neurotoxins (BoNTs), the most potent toxins known, are potential bioterrorism agents. It is well established that all seven serotypes of BoNTs (BoNT/A-G) require complex gangliosides as co-receptors. Here, we report that BoNT/DC, a presumed mosaic toxin between BoNT/D and BoNT/C1, binds and enters efficiently into neurons lacking complex gangliosides and shows no reduction in toxicity in mice deficient in complex gangliosides. The co-crystal structure of BoNT/DC with sialyl-Thomsen-Friedenreich antigen (Sialyl-T) suggests that BoNT/DC recognizes only the sialic acid, but not other moieties in gangliosides. Using liposome flotation assays, we demonstrate that an extended loop in BoNT/DC directly interacts with lipid membranes, and the co-occurring sialic acid binding and loop-membrane interactions mediate the recognition of gangliosides in membranes by BoNT/DC. These findings reveal a unique mechanism for cell membrane recognition and demonstrate that BoNT/DC can use a broad range of sialic acid-containing moieties as co-receptors.

National Category
Biological Sciences Microbiology in the medical area
Identifiers
urn:nbn:se:su:diva-149915 (URN)10.1038/s41467-017-01534-z (DOI)000416039000005 ()29158482 (PubMedID)
Available from: 2017-12-12 Created: 2017-12-12 Last updated: 2023-03-28Bibliographically approved
Frykholm, K., Berntsson, R.-A. P., Claesson, M., de Battice, L., Odegrip, R., Stenmark, P. & Westerlund, F. (2016). DNA compaction by the bacteriophage protein Cox studied on the single DNA molecule level using nanofluidic channels. Nucleic Acids Research, 44(15), 7219-7227
Open this publication in new window or tab >>DNA compaction by the bacteriophage protein Cox studied on the single DNA molecule level using nanofluidic channels
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2016 (English)In: Nucleic Acids Research, ISSN 0305-1048, E-ISSN 1362-4962, Vol. 44, no 15, p. 7219-7227Article in journal (Refereed) Published
Abstract [en]

The Cox protein from bacteriophage P2 forms oligomeric filaments and it has been proposed that DNA can be wound up around these filaments, similar to how histones condense DNA. We here use fluorescence microscopy to study single DNA-Cox complexes in nanofluidic channels and compare how the Cox homologs from phages P2 and W Phi affect DNA. By measuring the extension of nanoconfined DNA in absence and presence of Cox we show that the protein compacts DNA and that the binding is highly cooperative, in agreement with the model of a Cox filament around which DNA is wrapped. Furthermore, comparing microscopy images for the wild-type P2 Cox protein and two mutants allows us to discriminate between compaction due to filament formation and compaction by monomeric Cox. P2 and W Phi Cox have similar effects on the physical properties of DNA and the subtle, but significant, differences in DNA binding are due to differences in binding affinity rather than binding mode. The presented work highlights the use of single DNA molecule studies to confirm structural predictions from X-ray crystallography. It also shows how a small protein by oligomerization can have great impact on the organization of DNA and thereby fulfill multiple regulatory functions.

National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-135208 (URN)10.1093/nar/gkw352 (DOI)000383001100018 ()27131370 (PubMedID)
Available from: 2016-11-15 Created: 2016-11-01 Last updated: 2022-03-23Bibliographically approved
Gad, H., Svensson, L. M., Saleh, A., Berntsson, R.-A. P. A., Gustafsson, R., Johansson, F., . . . Helleday, T. (2014). MTH1 inhibition eradicates cancer by preventing sanitation of the dNTP pool. Nature, 508(7495), 215-221
Open this publication in new window or tab >>MTH1 inhibition eradicates cancer by preventing sanitation of the dNTP pool
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2014 (English)In: Nature, ISSN 0028-0836, E-ISSN 1476-4687, Vol. 508, no 7495, p. 215-221Article in journal (Refereed) Published
Abstract [en]

Cancers have dysfunctional redox regulation resulting in reactive oxygen species production, damaging both DNA and free dNTPs. The MTH1 protein sanitizes oxidized dNTP pools to prevent incorporation of damaged bases during DNA replication. Although MTH1 is non-essential in normal cells, we show that cancer cells require MTH1 activity to avoid incorporation of oxidized dNTPs, resulting in DNA damage and cell death. We validate MTH1 as an anticancer target in vivo and describe small molecules TH287 and TH588 as first-in-class nudix hydrolase family inhibitors that potently and selectively engage and inhibit the MTH1 protein in cells. Protein co-crystal structures demonstrate that the inhibitors bind in the active site of MTH1. The inhibitors cause incorporation of oxidized dNTPs in cancer cells, leading to DNA damage, cytotoxicity and therapeutic responses in patient-derived mouse xenografts. This study exemplifies the non-oncogene addiction concept for anticancer treatment and validates MTH1 as being cancer phenotypic lethal.

National Category
Biological Sciences
Research subject
Biochemistry
Identifiers
urn:nbn:se:su:diva-102367 (URN)10.1038/nature13181 (DOI)000333979900038 ()
Available from: 2014-04-02 Created: 2014-04-03 Last updated: 2022-02-23Bibliographically approved
Berntsson, R.-A. P. -., Odegrip, R., Sehlén, W., Skaar, K., Svensson, L. M., Massad, T., . . . Stenmark, P. (2014). Structural insight into DNA binding and oligomerization of the multifunctional Cox protein of bacteriophage P2. Nucleic Acids Research, 42(4), 2725-2735
Open this publication in new window or tab >>Structural insight into DNA binding and oligomerization of the multifunctional Cox protein of bacteriophage P2
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2014 (English)In: Nucleic Acids Research, ISSN 0305-1048, E-ISSN 1362-4962, Vol. 42, no 4, p. 2725-2735Article in journal (Refereed) Published
Abstract [en]

The Cox protein from bacteriophage P2 is a small multifunctional DNA-binding protein. It is involved in site-specific recombination leading to P2 prophage excision and functions as a transcriptional repressor of the P2 Pc promoter. Furthermore, it transcriptionally activates the unrelated, defective prophage P4 that depends on phage P2 late gene products for lytic growth. In this article, we have investigated the structural determinants to understand how P2 Cox performs these different functions. We have solved the structure of P2 Cox to 2.4 angstrom resolution. Interestingly, P2 Cox crystallized in a continuous oligomeric spiral with its DNA-binding helix and wing positioned outwards. The extended C-terminal part of P2 Cox is largely responsible for the oligomerization in the structure. The spacing between the repeating DNA-binding elements along the helical P2 Cox filament is consistent with DNA binding along the filament. Functional analyses of alanine mutants in P2 Cox argue for the importance of key residues for protein function. We here present the first structure from the Cox protein family and, together with previous biochemical observations, propose that P2 Cox achieves its various functions by specific binding of DNA while wrapping the DNA around its helical oligomer.

National Category
Biochemistry Molecular Biology
Research subject
Biochemistry
Identifiers
urn:nbn:se:su:diva-102485 (URN)10.1093/nar/gkt1119 (DOI)000332381000059 ()
Funder
Swedish Research Council, 2010-5200Wenner-Gren FoundationsSwedish Foundation for Strategic Research Carl Tryggers foundation EU, FP7, Seventh Framework Programme
Note

AuthorCount:9;

Available from: 2014-04-07 Created: 2014-04-07 Last updated: 2025-02-20Bibliographically approved
Berntsson, R. P., Peng, L., Svensson, L. M., Dong, M. & Stenmark, P. (2013). Crystal Structures of Botulinum Neurotoxin DC in Complex with Its Protein Receptors Synaptotagmin I and II. Structure, 21(9), 1602-1611
Open this publication in new window or tab >>Crystal Structures of Botulinum Neurotoxin DC in Complex with Its Protein Receptors Synaptotagmin I and II
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2013 (English)In: Structure, ISSN 0969-2126, E-ISSN 1878-4186, Vol. 21, no 9, p. 1602-1611Article in journal (Refereed) Published
Abstract [en]

Botulinum neurotoxins (BoNTs) can cause paralysis at exceptionally low concentrations and include seven serotypes (BoNT/A-G). The chimeric BoNT/DC toxin has a receptor binding domain similar to the same region in BoNT/C. However, BoNT/DC does not share protein receptor with BoNT/C. Instead, it shares synaptotagmin (Syt) I and II as receptors with BoNT/B, despite their low sequence similarity. Here, we present the crystal structures of the binding domain of BoNT/DC in complex with the recognition domains of its protein receptors, Syt-I and Syt-II. The structures reveal that BoNT/DC possesses a Syt binding site, distinct from the established Syt-II binding site in BoNT/B. Structure-based mutagenesis further shows that hydrophobic interactions play a key role in Syt binding. The structures suggest that the BoNT/DC ganglioside binding sites are independent of the protein receptor binding site. Our results reveal the remarkable versatility in the receptor recognition of the BoNTs.

National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-101499 (URN)10.1016/j.str.2013.06.026 (DOI)000330268600016 ()
Note

AuthorCount:5;

Available from: 2014-03-12 Created: 2014-03-10 Last updated: 2022-02-24Bibliographically approved
Kmiec, B., Teixeira, P. F., Berntsson, R.-A. P. -., Murcha, M. W., Branca, R. M. M., Radomiljac, J. D., . . . Glaser, E. (2013). Organellar oligopeptidase (OOP) provides a complementary pathway for targeting peptide degradation in mitochondria and chloroplasts. Proceedings of the National Academy of Sciences of the United States of America, 110(40), E3761-E3769
Open this publication in new window or tab >>Organellar oligopeptidase (OOP) provides a complementary pathway for targeting peptide degradation in mitochondria and chloroplasts
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2013 (English)In: Proceedings of the National Academy of Sciences of the United States of America, ISSN 0027-8424, E-ISSN 1091-6490, Vol. 110, no 40, p. E3761-E3769Article in journal (Refereed) Published
Abstract [en]

Both mitochondria and chloroplasts contain distinct proteolytic systems for precursor protein processing catalyzed by the mitochondrial and stromal processing peptidases and for the degradation of targeting peptides catalyzed by presequence protease. Here, we have identified and characterized a component of the organellar proteolytic systems in Arabidopsis thaliana, the organellar oligopeptidase, OOP (At5g65620). OOP belongs to the M3A family of peptide-degrading metalloproteases. Using two independent in vivo methods, we show that the protease is dually localized to mitochondria and chloroplasts. Furthermore, we localized the OPP homolog At5g10540 to the cytosol. Analysis of peptide degradation by OOP revealed substrate size restriction from 8 to 23 aa residues. Short mitochondrial targeting peptides (presequence of the ribosomal protein L29 and presequence of 1-aminocyclopropane-1-carboxylic acid deaminase 1) and N- and C-terminal fragments derived from the presequence of the ATPase beta subunit ranging in size from 11 to 20 aa could be degraded. MS analysis showed that OOP does not exhibit a strict cleavage pattern but shows a weak preference for hydrophobic residues (F/L) at the P1 position. The crystal structures of OOP, at 1.8-1.9 angstrom, exhibit an ellipsoidal shape consisting of two major domains enclosing the catalytic cavity of 3,000 angstrom(3). The structural and biochemical data suggest that the protein undergoes conformational changes to allow peptide binding and proteolysis. Our results demonstrate the complementary role of OOP in targeting-peptide degradation in mitochondria and chloroplasts.

National Category
Biological Sciences Chemical Sciences
Identifiers
urn:nbn:se:su:diva-95426 (URN)10.1073/pnas.1307637110 (DOI)000325105500007 ()
Funder
Swedish Research Council
Note

AuthorCount:14;

Available from: 2013-10-31 Created: 2013-10-28 Last updated: 2022-02-24Bibliographically approved
Projects
Structural and functional characterisation of Gram-positive Type 4 Secretion Systems [2016-03599_VR]; Umeå University
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0001-6848-322x

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