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Structural and mechanistic characterization of bifunctional heparan sulfate N-deacetylase-N-sulfotransferase 1

Author

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  • Courtney J. Mycroft-West

    (Harwell Science & Innovation Campus)

  • Sahar Abdelkarim

    (Harwell Science & Innovation Campus)

  • Helen M. E. Duyvesteyn

    (University of Oxford, The Wellcome Centre for Human Genetics)

  • Neha S. Gandhi

    (Manipal Academy of Higher Education
    Queensland University of Technology
    Queensland University of Technology)

  • Mark A. Skidmore

    (Keele University)

  • Raymond J. Owens

    (Harwell Science & Innovation Campus
    University of Oxford, The Wellcome Centre for Human Genetics)

  • Liang Wu

    (Harwell Science & Innovation Campus
    University of Oxford, The Wellcome Centre for Human Genetics)

Abstract

Heparan sulfate (HS) polysaccharides are major constituents of the extracellular matrix, which are involved in myriad structural and signaling processes. Mature HS polysaccharides contain complex, non-templated patterns of sulfation and epimerization, which mediate interactions with diverse protein partners. Complex HS modifications form around initial clusters of glucosamine-N-sulfate (GlcNS) on nascent polysaccharide chains, but the mechanistic basis underpinning incorporation of GlcNS itself into HS remains unclear. Here, we determine cryo-electron microscopy structures of human N-deacetylase-N-sulfotransferase (NDST)1, the bifunctional enzyme primarily responsible for initial GlcNS modification of HS. Our structures reveal the architecture of both NDST1 deacetylase and sulfotransferase catalytic domains, alongside a non-catalytic N-terminal domain. The two catalytic domains of NDST1 adopt a distinct back-to-back topology that limits direct cooperativity. Binding analyses, aided by activity-modulating nanobodies, suggest that anchoring of the substrate at the sulfotransferase domain initiates the NDST1 catalytic cycle, providing a plausible mechanism for cooperativity despite spatial domain separation. Our data shed light on key determinants of NDST1 activity, and describe tools to probe NDST1 function in vitro and in vivo.

Suggested Citation

  • Courtney J. Mycroft-West & Sahar Abdelkarim & Helen M. E. Duyvesteyn & Neha S. Gandhi & Mark A. Skidmore & Raymond J. Owens & Liang Wu, 2024. "Structural and mechanistic characterization of bifunctional heparan sulfate N-deacetylase-N-sulfotransferase 1," Nature Communications, Nature, vol. 15(1), pages 1-17, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-45419-4
    DOI: 10.1038/s41467-024-45419-4
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    1. Natalie C. Bamford & François Le Mauff & Jaime C. Van Loon & Hanna Ostapska & Brendan D. Snarr & Yongzhen Zhang & Elena N. Kitova & John S. Klassen & Jeroen D. C. Codée & Donald C. Sheppard & P. Lynne, 2020. "Structural and biochemical characterization of the exopolysaccharide deacetylase Agd3 required for Aspergillus fumigatus biofilm formation," Nature Communications, Nature, vol. 11(1), pages 1-13, December.
    2. Todd Lencz & Saurav Guha & Chunyu Liu & Jeffrey Rosenfeld & Semanti Mukherjee & Pamela DeRosse & Majnu John & Lijun Cheng & Chunling Zhang & Judith A. Badner & Masashi Ikeda & Nakao Iwata & Sven Cicho, 2013. "Genome-wide association study implicates NDST3 in schizophrenia and bipolar disorder," Nature Communications, Nature, vol. 4(1), pages 1-10, December.
    3. Jiandong Huo & Halina Mikolajek & Audrey Bas & Jordan J. Clark & Parul Sharma & Anja Kipar & Joshua Dormon & Chelsea Norman & Miriam Weckener & Daniel K. Clare & Peter J. Harrison & Julia A. Tree & Ka, 2021. "A potent SARS-CoV-2 neutralising nanobody shows therapeutic efficacy in the Syrian golden hamster model of COVID-19," Nature Communications, Nature, vol. 12(1), pages 1-18, December.
    4. Francisco Leisico & Juneina Omeiri & Christine Narvor & Joël Beaudouin & Michael Hons & Daphna Fenel & Guy Schoehn & Yohann Couté & David Bonnaffé & Rabia Sadir & Hugues Lortat-Jacob & Rebekka Wild, 2022. "Structure of the human heparan sulfate polymerase complex EXT1-EXT2," Nature Communications, Nature, vol. 13(1), pages 1-11, December.
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