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Missaghian, P., Dierker, T., Khosrowabadi, E., Axling, F., Eriksson, I., Ghanem, A., . . . Kjellén, L. (2022). A dominant negative splice variant of the heparan sulfate biosynthesis enzyme NDST1 reduces heparan sulfate sulfation. Glycobiology, 32(6), 518-528
Open this publication in new window or tab >>A dominant negative splice variant of the heparan sulfate biosynthesis enzyme NDST1 reduces heparan sulfate sulfation
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2022 (English)In: Glycobiology, ISSN 0959-6658, E-ISSN 1460-2423, Vol. 32, no 6, p. 518-528Article in journal (Refereed) Published
Abstract [en]

NDST1 (glucosaminyl N-deacetylase/N-sulfotransferase) is a key enzyme in heparan sulfate (HS) biosynthesis, where it is responsible for HS N-deacetylation and N-sulfation. In addition to the full length human enzyme of 882 amino acids, here designated NDST1A, a shorter form containing 825 amino acids (NDST1B) is synthesized after alternative splicing of the NDST1 mRNA. NDST1B is mostly expressed at a low level, but increased amounts are seen in several types of cancer where it is associated with shorter survival. In this study, we aimed at characterizing the enzymatic properties of NDST1B and its effect on HS biosynthesis. Purified recombinant NDST1B lacked both N-deacetylase and N-sulfotransferase activities. Interestingly, HEK293 cells overexpressing NDST1B synthesized HS with reduced sulfation and altered domain structure. Fluorescence resonance energy transfer-microscopy demonstrated that both NDST1A and NDST1B had the capacity to interact with the HS copolymerase subunits EXT1 and EXT2 and also to form NDST1A/NDST1B dimers. Since lysates from cells overexpressing NDST1B contained less NDST enzyme activity than control cells, we suggest that NDST1B works in a dominant negative manner, tentatively by replacing the active endogenous NDST1 in the enzyme complexes taking part in biosynthesis.

Place, publisher, year, edition, pages
Oxford University Press, 2022
Keywords
alternative splicing, golgi enzyme, heparan sulfate biosynthesis, NDST
National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:his:diva-25795 (URN)10.1093/glycob/cwac004 (DOI)000788206400001 ()35137078 (PubMedID)2-s2.0-85130302093 (Scopus ID)
Funder
Uppsala UniversitySwedish Cancer Society, 20 1338 PjF
Note

CC BY-NC 4.0

Corresponding author: Department of Medical Biochemistry and Microbiology, The Biomedical Center, Box 582, 751 23 Uppsala, Sweden. Email: lena.kjellen@imbim.uu.se

This work was supported by The Swedish Cancer Society Grant number 20 1338 PjF, Stiftelsen för Proteoglykanforskning, and the Medical Faculty at Uppsala University.

Available from: 2025-09-03 Created: 2025-09-03 Last updated: 2025-11-11Bibliographically approved
Habicher, J., Varshney, G. K., Waldmann, L., Snitting, D., Allalou, A., Zhang, H., . . . Ledin, J. (2022). Chondroitin/dermatan sulfate glycosyltransferase genes are essential for craniofacial development. PLOS Genetics, 18(2), Article ID e1010067.
Open this publication in new window or tab >>Chondroitin/dermatan sulfate glycosyltransferase genes are essential for craniofacial development
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2022 (English)In: PLOS Genetics, ISSN 1553-7390, E-ISSN 1553-7404, Vol. 18, no 2, article id e1010067Article in journal (Refereed) Published
Abstract [en]

Abstract

Chondroitin/dermatan sulfate (CS/DS) proteoglycans are indispensable for animal development and homeostasis but the large number of enzymes involved in their biosynthesis have made CS/DS function a challenging problem to study genetically. In our study, we generated loss-of-function alleles in zebrafish genes encoding CS/DS biosynthetic enzymes and characterized the effect on development in single and double mutants. Homozygous mutants in chsy1, csgalnact1a, csgalnat2, chpfa, ust and chst7, respectively, develop to adults. However, csgalnact1a-/- fish develop distinct craniofacial defects while the chsy1-/- skeletal phenotype is milder and the remaining mutants display no gross morphological abnormalities. These results suggest a high redundancy for the CS/DS biosynthetic enzymes and to further reduce CS/DS biosynthesis we combined mutant alleles. The craniofacial phenotype is further enhanced in csgalnact1a-/-;chsy1-/- adults and csgalnact1a-/-;csgalnact2-/- larvae. While csgalnact1a-/-;csgalnact2-/- was the most affected allele combination in our study, CS/DS is still not completely abolished. Transcriptome analysis of chsy1-/-, csgalnact1a-/- and csgalnact1a-/-;csgalnact2-/- larvae revealed that the expression had changed in a similar way in the three mutant lines but no differential expression was found in any of fifty GAG biosynthesis enzymes identified. Thus, zebrafish larvae do not increase transcription of GAG biosynthesis genes as a consequence of decreased CS/DS biosynthesis. The new zebrafish lines develop phenotypes similar to clinical characteristics of several human congenital disorders making the mutants potentially useful to study disease mechanisms and treatment.

Abstract [en]

Author summary

The components of the extracellular matrix are crucial for interactions and communication between cells during animal development and disease progression. One major component of the extracellular matrix is chondroitin sulfate/dermatan sulfate (CS/DS) proteoglycans, which support and modify cell functions and tissue homeostasis. The biosynthesis of CS/DS is complex and no genetic models have been developed to specifically reduce CS/DS in the zebrafish model organism. We have used CRISPR/Cas9 technology to knock out key CS/DS biosynthesis genes. We find that knocking out single genes rarely causes major effects on zebrafish morphology and viability, but by combining several knockout alleles we could observe malformations in the zebrafish craniofacial skeleton. In addition, one combination of alleles was embryonic lethal. Our findings describe the role of CS/DS in the development of the head skeleton and give insights in the regulation of genes involved in CS/DS biosynthesis. The zebrafish mutants generated in this study can be used as tools to further study human diseases caused by mutations in CS/DS biosynthesis enzymes.

Place, publisher, year, edition, pages
Public Library of Science (PLoS), 2022
National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:his:diva-25796 (URN)10.1371/journal.pgen.1010067 (DOI)001004241700001 ()35192612 (PubMedID)2-s2.0-85125410325 (Scopus ID)
Funder
Science for Life Laboratory, SciLifeLab
Note

CC0 1.0 Universal

judith.habicher@unitn.it (JH); johan.ledin@ebc.uu.se (JL)

Erratum in: PLOS Genetics, Volume 18, Issue 5, 2022, e1010242. doi:10.1371/journal.pgen.1010242

This study was financed by funding to SB and GV from National Human Genome Research Institute (1ZIAHG000183), to JL and LW from SciLifeLab (www.scilifelab.se), to JH, JL, DS and LW from the Department of Organismal Biology at Uppsala University (www.uu.se) and to LK, AG, and TD from the Foundation for Proteoglycan Research and the Department of Medical Biochemistry and Microbiology at Uppsala University (www.uu.se). The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.

Available from: 2025-09-03 Created: 2025-09-03 Last updated: 2025-11-12Bibliographically approved
Bachvarova, V., Dierker, T., Esko, J., Hoffmann, D., Kjellén, L. & Vortkamp, A. (2020). Chondrocytes respond to an altered heparan sulfate composition with distinct changes of heparan sulfate structure and increased levels of chondroitin sulfate. Matrix Biology, 93(November 2020), 43-59
Open this publication in new window or tab >>Chondrocytes respond to an altered heparan sulfate composition with distinct changes of heparan sulfate structure and increased levels of chondroitin sulfate
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2020 (English)In: Matrix Biology, ISSN 0945-053X, E-ISSN 1569-1802, Vol. 93, no November 2020, p. 43-59Article in journal (Refereed) Published
Abstract [en]

Heparan sulfate (HS) regulates the activity of many signaling molecules critical for the development of endochondral bones. Even so, mice with a genetically altered HS metabolism display a relatively mild skeletal phenotype compared to the defects observed in other tissues and organs pointing to a reduced HS dependency of growth-factor signaling in chondrocytes. To understand this difference, we have investigated the glycosaminoglycan (GAG) composition in two mouse lines that produce either reduced levels of HS (Ext1gt/gt mice) or HS lacking 2-O-sulfation (Hs2st1−/− mice). Analysis by RPIP-HPLC revealed an increased level of sulfated disaccarides not affected by the mutation in both mouse lines indicating that chondrocytes attempt to restore a critical level of sulfation. In addition, in both mutant lines we also detected significantly elevated levels of CS. Size exclusion chromatography further demonstrated that Ext1gt/gt mutants produce more but shorter CS chains, while the CS chains produced by (Hs2st1−/− mice) mutants are of similar length to that of wild type littermates indicating that chondrocytes produce more rather than longer CS chains. Expression analysis revealed an upregulation of aggrecan, which likely carries most of the additionally produced CS. Together the results of this study demonstrate for the first time that not only a reduced HS synthesis but also an altered HS structure leads to increased levels of CS in mammalian tissues. Furthermore, as chondrocytes produce 100-fold more CS than HS the increased CS levels point to an active, precursor-independent mechanism that senses the quality of HS in a vast excess of CS. Interestingly, reducing the level of cell surface CS by chondroitinase treatment leads to reduced Bmp2 induced Smad1/5/9 phosphorylation. In addition, Erk phosphorylation is increased independent of Fgf18 treatment indicating that both, HS and CS, affect growth factor signaling in chondrocytes in distinct manners.

Place, publisher, year, edition, pages
Elsevier, 2020
National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:his:diva-25800 (URN)10.1016/j.matbio.2020.03.006 (DOI)000594555300004 ()32201365 (PubMedID)2-s2.0-85083373615 (Scopus ID)
Funder
German Research Foundation (DFG), Vo620/14-1Swedish Cancer SocietyUppsala University
Note

CC BY-NC-ND 4.0

The project was funded by a DFG grant (Vo620/14-1) to A.V, and grants of the Swedish Cancer Society and the “Stiftelsen for proteoglykanforskning” of the Uppsala University to L.K. The funding sources had no role in study design,data collection and analysis, decision to publish or preparation of the manuscript.

Available from: 2025-09-04 Created: 2025-09-04 Last updated: 2025-11-12Bibliographically approved
Noborn, F., Gomez Toledo, A., Nasir, W., Nilsson, J., Dierker, T., Kjellén, L. & Larson, G. (2018). Expanding the chondroitin glycoproteome of Caenorhabditis elegans. Journal of Biological Chemistry, 293(1), 379-389
Open this publication in new window or tab >>Expanding the chondroitin glycoproteome of Caenorhabditis elegans
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2018 (English)In: Journal of Biological Chemistry, ISSN 0021-9258, E-ISSN 1083-351X, Vol. 293, no 1, p. 379-389Article in journal (Refereed) Published
Abstract [en]

Chondroitin sulfate proteoglycans (CSPGs) are important structural components of connective tissues in essentially all metazoan organisms. In vertebrates, CSPGs are involved also in more specialized processes such as neurogenesis and growth factor signaling. In invertebrates, however, knowledge of CSPGs core proteins and proteoglycan-related functions is relatively limited, even for Caenorhabditis elegans. This nematode produces large amounts of non-sulfated chondroitin in addition to low-sulfated chondroitin sulfate chains. So far, only nine core proteins (CPGs) have been identified, some of which have been shown to be involved in extracellular matrix formation. We recently introduced a protocol to characterize proteoglycan core proteins by identifying CS-glycopeptides with a combination of biochemical enrichment, enzymatic digestion, and nano-scale liquid chromatography MS/MS analysis. Here, we have used this protocol to map the chondroitin glycoproteome in C. elegans, resulting in the identification of 15 novel CPG proteins in addition to the nine previously established. Three of the newly identified CPGs displayed homology to vertebrate proteins. Bioinformatics analysis of the primary protein sequences revealed that the CPG proteins altogether contained 19 unique functional domains, including Kunitz and endostatin domains, suggesting direct involvement in protease inhibition and axonal migration, respectively. The analysis of the core protein domain organization revealed that all chondroitin attachment sites are located in unstructured regions. Our results suggest that CPGs display a much greater functional and structural heterogeneity than previously appreciated and indicate that specialized proteoglycan-mediated functions evolved early in metazoan evolution.

Place, publisher, year, edition, pages
Elsevier, 2018
Keywords
Caenorhabditis elegans (C. elegans), chondroitin, glycosaminoglycan, mass spectrometry (MS), proteoglycan, proteoglycan structure
National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:his:diva-25801 (URN)10.1074/jbc.m117.807800 (DOI)000419453200032 ()29138239 (PubMedID)2-s2.0-85040130656 (Scopus ID)
Note

CC BY 4.0

Available from: 2025-09-04 Created: 2025-09-04 Last updated: 2025-11-12Bibliographically approved
Dierker, T. & Kjellén, L. (2017). Separation and Purification of Glycosaminoglycans (GAGs) from Caenorhabditis elegans. Bio-protocol, 7(15), Article ID e2437.
Open this publication in new window or tab >>Separation and Purification of Glycosaminoglycans (GAGs) from Caenorhabditis elegans
2017 (English)In: Bio-protocol, E-ISSN 2331-8325, Vol. 7, no 15, article id e2437Article in journal (Refereed) Published
Abstract [en]

The nematode Caenorhabditis elegans is a popular model organism for studies of developmental biology, neurology, ageing and other fields of basic research. Because many developmental processes are regulated by glycosaminoglyans (GAGs) on cell surfaces and in the extracellular matrix, methods to isolate and analyze C. elegans GAGs are needed. Such methods have previously been optimized for other species such as mice and zebrafish. After modifying existing purification protocols, we could recently show that the nematodes also produce chondroitin sulfate, in addition to heparan sulfate, thus challenging the view that only non-sulfated chondroitin was synthesized by C. elegans. We here present our protocol adapted for C. elegans. Since the purification strategy involves separation of non-sulfated and sulfated GAGs, it may also be useful for other applications where this approach could be advantageous.

Place, publisher, year, edition, pages
bio-protocol, 2017
Keywords
Glycosaminoglycans, Caenorhabditis elegans, Proteoglycans, Ion exchange chromatography, Sulfation
National Category
Biochemistry
Identifiers
urn:nbn:se:his:diva-25802 (URN)10.21769/bioprotoc.2437 (DOI)000457836100019 ()34541157 (PubMedID)
Available from: 2025-09-04 Created: 2025-09-04 Last updated: 2025-11-11Bibliographically approved
Dierker, T., Bachvarova, V., Krause, Y., Li, J.-P., Kjellén, L., Seidler, D. G. & Vortkamp, A. (2016). Altered heparan sulfate structure in Glce−/− mice leads to increased Hedgehog signaling in endochondral bones. Matrix Biology, 49, 82-92
Open this publication in new window or tab >>Altered heparan sulfate structure in Glce−/− mice leads to increased Hedgehog signaling in endochondral bones
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2016 (English)In: Matrix Biology, ISSN 0945-053X, E-ISSN 1569-1802, Vol. 49, p. 82-92Article in journal (Refereed) Published
Abstract [en]

One of the key regulators of endochondral ossification is Indian hedgehog (Ihh), which acts as a long-range morphogen in the developing skeletal elements. Previous studies have shown that the distribution and signaling activity of Ihh is regulated by the concentration of the extracellular glycosaminoglycan heparan sulfate (HS). An essential step during biosynthesis of HS is the epimerization of d-glucuronic to l-iduronic acid by the enzyme glucuronyl C5-epimerase (Hsepi or Glce). Here we have investigated chondrocyte differentiation in Glce deficient mice and found increased regions of proliferating chondrocytes accompanied by a delayed onset of hypertrophic differentiation. In addition, we observed increased expression levels of the Ihh target genes Patched1 (Ptch1) and Parathyroid hormone related peptide (Pthrp; Parathyroid hormone like hormone (Pthlh)) indicating elevated Ihh signaling. We further show that Ihh binds with reduced affinity to HS isolated from Glce−/− mice. Together our results strongly indicate that not only the level, but also the structure of HS is critical in regulating the distribution and signaling activity of Ihh in chondrocytes.

Place, publisher, year, edition, pages
Elsevier, 2016
Keywords
Indian hedgehog, Ihh, Chondrocyte differentiation, Heparan sulfate, Epimerization, Glce, Endochondral ossification
National Category
Molecular Biology Cell and Molecular Biology
Identifiers
urn:nbn:se:his:diva-25808 (URN)10.1016/j.matbio.2015.06.004 (DOI)000371944000005 ()26116392 (PubMedID)2-s2.0-84961185382 (Scopus ID)
Available from: 2025-09-05 Created: 2025-09-05 Last updated: 2025-11-12Bibliographically approved
Deligny, A., Dierker, T., Dagälv, A., Lundequist, A., Eriksson, I., Nairn, A. V., . . . Kjellén, L. (2016). NDST2 (N-Deacetylase/N-Sulfotransferase-2) Enzyme Regulates Heparan Sulfate Chain Length. Journal of Biological Chemistry, 291(36), 18600-18607
Open this publication in new window or tab >>NDST2 (N-Deacetylase/N-Sulfotransferase-2) Enzyme Regulates Heparan Sulfate Chain Length
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2016 (English)In: Journal of Biological Chemistry, ISSN 0021-9258, E-ISSN 1083-351X, Vol. 291, no 36, p. 18600-18607Article in journal (Refereed) Published
Abstract [en]

Analysis of heparan sulfate synthesized by HEK 293 cells overexpressing murine NDST1 and/or NDST2 demonstrated that the amount of heparan sulfate was increased in NDST2- but not in NDST1-overexpressing cells. Altered transcript expression of genes encoding other biosynthetic enzymes or proteoglycan core proteins could not account for the observed changes. However, the role of NDST2 in regulating the amount of heparan sulfate synthesized was confirmed by analyzing heparan sulfate content in tissues isolated from Ndst2−/− mice, which contained reduced levels of the polysaccharide. Detailed disaccharide composition analysis showed no major structural difference between heparan sulfate from control and Ndst2−/− tissues, with the exception of heparan sulfate from spleen where the relative amount of trisulfated disaccharides was lowered in the absence of NDST2. In vivo transcript expression levels of the heparan sulfate-polymerizing enzymes Ext1 and Ext2 were also largely unaffected by NDST2 levels, pointing to a mode of regulation other than increased gene transcription. Size estimation of heparan sulfate polysaccharide chains indicated that increased chain lengths in NDST2-overexpressing cells alone could explain the increased heparan sulfate content. A model is discussed where NDST2-specific substrate modification stimulates elongation resulting in increased heparan sulfate chain length.

Place, publisher, year, edition, pages
Elsevier, 2016
Keywords
Golgi, heparan sulfate, heparin, proteoglycan synthesis, sulfotransferase
National Category
Medical Biotechnology (Focus on Cell Biology, (incl. Stem Cell Biology), Molecular Biology, Microbiology, Biochemistry or Biopharmacy) Molecular Biology
Identifiers
urn:nbn:se:his:diva-25807 (URN)10.1074/jbc.m116.744433 (DOI)000383242300001 ()27387504 (PubMedID)2-s2.0-84984870979 (Scopus ID)
Funder
NIH (National Institutes of Health), GM103490
Note

CC BY 4.0

Available from: 2025-09-05 Created: 2025-09-05 Last updated: 2025-11-12Bibliographically approved
Dierker, T., Shao, C., Haitina, T., Zaia, J., Hinas, A. & Kjellén, L. (2016). Nematodes join the family of chondroitin sulfate-synthesizing organisms: Identification of an active chondroitin sulfotransferase in Caenorhabditis elegans. Scientific Reports, 6(1), Article ID 34662.
Open this publication in new window or tab >>Nematodes join the family of chondroitin sulfate-synthesizing organisms: Identification of an active chondroitin sulfotransferase in Caenorhabditis elegans
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2016 (English)In: Scientific Reports, E-ISSN 2045-2322, Vol. 6, no 1, article id 34662Article in journal (Refereed) Published
Abstract [en]

Proteoglycans are proteins that carry sulfated glycosaminoglycans (GAGs). They help form and maintain morphogen gradients, guiding cell migration and differentiation during animal development. While no sulfated GAGs have been found in marine sponges, chondroitin sulfate (CS) and heparan sulfate (HS) have been identified in Cnidarians, Lophotrocozoans and Ecdysozoans. The general view that nematodes such as Caenorhabditis elegans, which belong to Ecdysozoa, produce HS but only chondroitin without sulfation has therefore been puzzling. We have analyzed GAGs in C. elegans using reversed-phase ion-pairing HPLC, mass spectrometry and immunohistochemistry. Our analyses included wild type C. elegans but also a mutant lacking two HS sulfotransferases (hst-6 hst-2), as we suspected that the altered HS structure could boost CS sulfation. We could indeed detect sulfated CS in both wild type and mutant nematodes. While 4-O-sulfation of galactosamine dominated, we also detected 6-O-sulfated galactosamine residues. Finally, we identified the product of the gene C41C4.1 as a C. elegans CS-sulfotransferase and renamed it chst-1 (CarboHydrate SulfoTransferase) based on loss of CS-4-O-sulfation in a C41C4.1 mutant and in vitro sulfotransferase activity of recombinant C41C4.1 protein. We conclude that C. elegans indeed manufactures CS, making this widely used nematode an interesting model for developmental studies involving CS.

Place, publisher, year, edition, pages
Springer Nature, 2016
National Category
Molecular Biology Cell and Molecular Biology
Identifiers
urn:nbn:se:his:diva-25806 (URN)10.1038/srep34662 (DOI)000384654100001 ()27703236 (PubMedID)2-s2.0-84989856164 (Scopus ID)
Funder
Swedish Research CouncilNIH (National Institutes of Health), P41GM104603
Note

CC BY 4.0

Funding was provided by the Swedish Research Council (to L.K.), by the German Academic Exchange Service (to T.D.), by Stiftelsen för Proteoglykanforskning (to L.K.) and the U.S. National Institutes for Health grant number P41GM104603 (to J. Z). The authors thank Inger Eriksson and Anders Lundequist for their support with cell culture work, as well as Anders Malmström for providing the K4 polysaccharide enzyme substrate.

Available from: 2025-09-05 Created: 2025-09-05 Last updated: 2025-11-12Bibliographically approved
Habicher, J., Haitina, T., Eriksson, I., Holmborn, K., Dierker, T., Ahlberg, P. E. & Ledin, J. (2015). Chondroitin / Dermatan Sulfate Modification Enzymes in Zebrafish Development. PLOS ONE, 10(3), Article ID e0121957.
Open this publication in new window or tab >>Chondroitin / Dermatan Sulfate Modification Enzymes in Zebrafish Development
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2015 (English)In: PLOS ONE, E-ISSN 1932-6203, Vol. 10, no 3, article id e0121957Article in journal (Refereed) Published
Abstract [en]

Chondroitin/dermatan sulfate (CS/DS) proteoglycans consist of unbranched sulfated polysaccharide chains of repeating GalNAc-GlcA/IdoA disaccharide units, attached to serine residues on specific proteins. The CS/DS proteoglycans are abundant in the extracellular matrix where they have essential functions in tissue development and homeostasis. In this report a phylogenetic analysis of vertebrate genes coding for the enzymes that modify CS/DS is presented. We identify single orthologous genes in the zebrafish genome for the sulfotransferases chst7, chst11, chst13, chst14, chst15 and ust and the epimerase dse. In contrast, two copies were found for mammalian sulfotransferases CHST3 and CHST12 and the epimerase DSEL, named chst3a and chst3b, chst12a and chst12b, dsela and dselb, respectively. Expression of CS/DS modification enzymes is spatially and temporally regulated with a large variation between different genes. We found that CS/DS 4-O-sulfotransferases and 6-O-sulfotransferases as well as CS/DS epimerases show a strong and partly overlapping expression, whereas the expression is restricted for enzymes with ability to synthesize di-sulfated disaccharides. A structural analysis further showed that CS/DS sulfation increases during embryonic development mainly due to synthesis of 4-O-sulfated GalNAc while the proportion of 6-O-sulfated GalNAc increases in later developmental stages. Di-sulfated GalNAc synthesized by Chst15 and 2-O-sulfated GlcA/IdoA synthesized by Ust are rare, in accordance with the restricted expression of these enzymes. We also compared CS/DS composition with that of heparan sulfate (HS). Notably, CS/DS biosynthesis in early zebrafish development is more dynamic than HS biosynthesis. Furthermore, HS contains disaccharides with more than one sulfate group, which are virtually absent in CS/DS.

Place, publisher, year, edition, pages
Public Library of Science (PLoS), 2015
National Category
Molecular Biology Cell and Molecular Biology
Identifiers
urn:nbn:se:his:diva-25809 (URN)10.1371/journal.pone.0121957 (DOI)000352083900161 ()25793894 (PubMedID)2-s2.0-84925625858 (Scopus ID)
Funder
Knut and Alice Wallenberg FoundationSwedish Research Council
Note

CC BY 4.0

This work was supported by grants from the Knut and Alice Wallenberg Foundation (https://www.wallenberg.com/kaw/en), and the Swedish Research Council VR (http://www.vr.se/inenglish.4.12fff4451215cbd83e4800015152.html). The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.

Available from: 2025-09-05 Created: 2025-09-05 Last updated: 2025-11-12Bibliographically approved
Dagälv, A., Lundequist, A., Filipek-Górniok, B., Dierker, T., Eriksson, I. & Kjellén, L. (2015). Heparan Sulfate Structure: Methods to Study N-Sulfation and NDST Action. Methods in Molecular Biology, 1229, 189-200
Open this publication in new window or tab >>Heparan Sulfate Structure: Methods to Study N-Sulfation and NDST Action
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2015 (English)In: Methods in Molecular Biology, ISSN 1064-3745, E-ISSN 1940-6029, Vol. 1229, p. 189-200Article in journal (Refereed) Published
Abstract [en]

Heparan sulfate proteoglycans are important modulators of cellular processes where the negatively charged polysaccharide chains interact with target proteins. The sulfation pattern of the heparan sulfate chains will determine the proteins that will bind and the affinity of the interactions. The N-deacetylase/N-sulfotransferase (NDST) enzymes are of key importance during heparan sulfate biosynthesis when the sulfation pattern is determined. In this chapter, metabolic labeling of heparan sulfate with [35S]sulfate or [3H]glucosamine in cell cultures is described, in addition to characterization of polysaccharide chain length and degree of N-sulfation. Methods to measure NDST enzyme activity are also presented.

Place, publisher, year, edition, pages
New York, NY: Humana Press, 2015
National Category
Molecular Biology
Identifiers
urn:nbn:se:his:diva-25810 (URN)10.1007/978-1-4939-1714-3_17 (DOI)000344016200018 ()25325954 (PubMedID)2-s2.0-84921823681 (Scopus ID)
Note

Artikel/Article; Kapitel i bok/Book Chapter

Glycosaminoglycans: Chemistry and Biology

Editors: Kuberan Balagurunathan, Hiroshi Nakato, Umesh R. Desai

Part of the book series: Methods in Molecular Biology (MIMB, volume 1229)

Hardcover ISBN 978-1-4939-1713-6

Softcover ISBN 978-1-4939-4696-9

eBook ISBN 978-1-4939-1714-3

Available from: 2025-09-05 Created: 2025-09-05 Last updated: 2025-11-12Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0003-1991-2723

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