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O-Linked Sialoglycans Modulate the Proteolysis of SARS-CoV-2 Spike and Likely Contribute to the Mutational Trajectory in Variants of Concern.
Gonzalez-Rodriguez, Edgar; Zol-Hanlon, Mia; Bineva-Todd, Ganka; Marchesi, Andrea; Skehel, Mark; Mahoney, Keira E; Roustan, Chloë; Borg, Annabel; Di Vagno, Lucia; Kjær, Svend; Wrobel, Antoni G; Benton, Donald J; Nawrath, Philipp; Flitsch, Sabine L; Joshi, Dhira; González-Ramírez, Andrés Manuel; Wilkinson, Katalin A; Wilkinson, Robert J; Wall, Emma C; Hurtado-Guerrero, Ramón; Malaker, Stacy A; Schumann, Benjamin.
  • Gonzalez-Rodriguez E; Chemical Glycobiology Laboratory, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Zol-Hanlon M; Department of Chemistry, Imperial College London, W12 0BZ London, United Kingdom.
  • Bineva-Todd G; Chemical Glycobiology Laboratory, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Marchesi A; Signalling and Structural Biology Lab, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Skehel M; Chemical Glycobiology Laboratory, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Mahoney KE; Chemical Glycobiology Laboratory, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Roustan C; Department of Chemistry, Imperial College London, W12 0BZ London, United Kingdom.
  • Borg A; Proteomics Science Technology Platform, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Di Vagno L; Department of Chemistry, Yale University, 275 Prospect Street, 06511 New Haven, Connecticut, United States.
  • Kjær S; Structural Biology Science Technology Platform, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Wrobel AG; Structural Biology Science Technology Platform, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Benton DJ; Chemical Glycobiology Laboratory, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Nawrath P; Proteomics Science Technology Platform, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Flitsch SL; Structural Biology Science Technology Platform, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Joshi D; Structural Biology of Disease Processes Laboratory, Francis Crick Institute, NW1 1AT London, United Kingdom.
  • González-Ramírez AM; Structural Biology of Disease Processes Laboratory, Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Wilkinson KA; Structural Biology of Disease Processes Laboratory, Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Wilkinson RJ; Manchester Institute of Biotechnology, University of Manchester, 131 Princess Street, M1 7DN Manchester, United Kingdom.
  • Wall EC; Chemical Biology Science Technology Platform, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Hurtado-Guerrero R; Institute of Biocomputation and Physics of Complex Systems, University of Zaragoza, 50018 Zaragoza, Spain.
  • Malaker SA; Tuberculosis Laboratory, The Francis Crick Institute, NW1 1AT London, United Kingdom.
  • Schumann B; Wellcome Centre for Infectious Diseases Research in Africa, University of Cape Town, 7925 Observatory, Cape Town, South Africa.
ACS Cent Sci ; 9(3): 393-404, 2023 Mar 22.
Article in English | MEDLINE | ID: covidwho-2261001
ABSTRACT
The emergence of a polybasic cleavage motif for the protease furin in SARS-CoV-2 spike has been established as a major factor for human viral transmission. The region N-terminal to that motif is extensively mutated in variants of concern (VOCs). Besides furin, spikes from these variants appear to rely on other proteases for maturation, including TMPRSS2. Glycans near the cleavage site have raised questions about proteolytic processing and the consequences of variant-borne mutations. Here, we identify that sialic acid-containing O-linked glycans on Thr678 of SARS-CoV-2 spike influence furin and TMPRSS2 cleavage and posit O-linked glycosylation as a likely driving force for the emergence of VOC mutations. We provide direct evidence that the glycosyltransferase GalNAc-T1 primes glycosylation at Thr678 in the living cell, an event that is suppressed by mutations in the VOCs Alpha, Delta, and Omicron. We found that the sole incorporation of N-acetylgalactosamine did not impact furin activity in synthetic O-glycopeptides, but the presence of sialic acid reduced the furin rate by up to 65%. Similarly, O-glycosylation with a sialylated trisaccharide had a negative impact on TMPRSS2 cleavage. With a chemistry-centered approach, we substantiate O-glycosylation as a major determinant of spike maturation and propose disruption of O-glycosylation as a substantial driving force for VOC evolution.

Full text: Available Collection: International databases Database: MEDLINE Type of study: Prognostic study Topics: Variants Language: English Journal: ACS Cent Sci Year: 2023 Document Type: Article Affiliation country: Acscentsci.2c01349

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Full text: Available Collection: International databases Database: MEDLINE Type of study: Prognostic study Topics: Variants Language: English Journal: ACS Cent Sci Year: 2023 Document Type: Article Affiliation country: Acscentsci.2c01349