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Hyper-truncated Asn355- and Asn391-glycans modulate the activity of neutrophil granule myeloperoxidase
Myeloperoxidase (MPO) plays essential roles in neutrophil-mediated immunity via the generation of reactive oxidation products. Complex carbohydrates decorate MPO at discrete sites, but their functional relevance remains elusive. To this end, we have characterised the structure–biosynthesis–activity...
Autores principales: | , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Society for Biochemistry and Molecular Biology
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7857493/ https://www.ncbi.nlm.nih.gov/pubmed/33273015 http://dx.doi.org/10.1074/jbc.RA120.016342 |
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author | Tjondro, Harry C. Ugonotti, Julian Kawahara, Rebeca Chatterjee, Sayantani Loke, Ian Chen, Siyun Soltermann, Fabian Hinneburg, Hannes Parker, Benjamin L. Venkatakrishnan, Vignesh Dieckmann, Regis Grant, Oliver C. Bylund, Johan Rodger, Alison Woods, Robert J. Karlsson-Bengtsson, Anna Struwe, Weston B. Thaysen-Andersen, Morten |
author_facet | Tjondro, Harry C. Ugonotti, Julian Kawahara, Rebeca Chatterjee, Sayantani Loke, Ian Chen, Siyun Soltermann, Fabian Hinneburg, Hannes Parker, Benjamin L. Venkatakrishnan, Vignesh Dieckmann, Regis Grant, Oliver C. Bylund, Johan Rodger, Alison Woods, Robert J. Karlsson-Bengtsson, Anna Struwe, Weston B. Thaysen-Andersen, Morten |
author_sort | Tjondro, Harry C. |
collection | PubMed |
description | Myeloperoxidase (MPO) plays essential roles in neutrophil-mediated immunity via the generation of reactive oxidation products. Complex carbohydrates decorate MPO at discrete sites, but their functional relevance remains elusive. To this end, we have characterised the structure–biosynthesis–activity relationship of neutrophil MPO (nMPO). Mass spectrometry demonstrated that nMPO carries both characteristic under-processed and hyper-truncated glycans. Occlusion of the Asn355/Asn391-glycosylation sites and the Asn323-/Asn483-glycans, located in the MPO dimerisation zone, was found to affect the local glycan processing, thereby providing a molecular basis of the site-specific nMPO glycosylation. Native mass spectrometry, mass photometry and glycopeptide profiling revealed significant molecular complexity of diprotomeric nMPO arising from heterogeneous glycosylation, oxidation, chlorination and polypeptide truncation variants and a previously unreported low-abundance monoprotomer. Longitudinal profiling of maturing, mature, granule-separated and pathogen-stimulated neutrophils demonstrated that nMPO is dynamically expressed during granulopoiesis, unevenly distributed across granules and degranulated upon activation. We also show that proMPO-to-MPO maturation occurs during early/mid-stage granulopoiesis. While similar global MPO glycosylation was observed across conditions, the conserved Asn355-/Asn391-sites displayed elevated glycan hyper-truncation, which correlated with higher enzyme activities of MPO in distinct granule populations. Enzymatic trimming of the Asn355-/Asn391-glycans recapitulated the activity gain and showed that nMPO carrying hyper-truncated glycans at these positions exhibits increased thermal stability, polypeptide accessibility and ceruloplasmin-mediated inhibition potential relative to native nMPO. Finally, molecular modelling revealed that hyper-truncated Asn355-glycans positioned in the MPO-ceruloplasmin interface are critical for uninterrupted inhibition. Here, through an innovative and comprehensive approach, we report novel functional roles of MPO glycans, providing new insight into neutrophil-mediated immunity. |
format | Online Article Text |
id | pubmed-7857493 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | American Society for Biochemistry and Molecular Biology |
record_format | MEDLINE/PubMed |
spelling | pubmed-78574932021-03-19 Hyper-truncated Asn355- and Asn391-glycans modulate the activity of neutrophil granule myeloperoxidase Tjondro, Harry C. Ugonotti, Julian Kawahara, Rebeca Chatterjee, Sayantani Loke, Ian Chen, Siyun Soltermann, Fabian Hinneburg, Hannes Parker, Benjamin L. Venkatakrishnan, Vignesh Dieckmann, Regis Grant, Oliver C. Bylund, Johan Rodger, Alison Woods, Robert J. Karlsson-Bengtsson, Anna Struwe, Weston B. Thaysen-Andersen, Morten J Biol Chem Research Article Myeloperoxidase (MPO) plays essential roles in neutrophil-mediated immunity via the generation of reactive oxidation products. Complex carbohydrates decorate MPO at discrete sites, but their functional relevance remains elusive. To this end, we have characterised the structure–biosynthesis–activity relationship of neutrophil MPO (nMPO). Mass spectrometry demonstrated that nMPO carries both characteristic under-processed and hyper-truncated glycans. Occlusion of the Asn355/Asn391-glycosylation sites and the Asn323-/Asn483-glycans, located in the MPO dimerisation zone, was found to affect the local glycan processing, thereby providing a molecular basis of the site-specific nMPO glycosylation. Native mass spectrometry, mass photometry and glycopeptide profiling revealed significant molecular complexity of diprotomeric nMPO arising from heterogeneous glycosylation, oxidation, chlorination and polypeptide truncation variants and a previously unreported low-abundance monoprotomer. Longitudinal profiling of maturing, mature, granule-separated and pathogen-stimulated neutrophils demonstrated that nMPO is dynamically expressed during granulopoiesis, unevenly distributed across granules and degranulated upon activation. We also show that proMPO-to-MPO maturation occurs during early/mid-stage granulopoiesis. While similar global MPO glycosylation was observed across conditions, the conserved Asn355-/Asn391-sites displayed elevated glycan hyper-truncation, which correlated with higher enzyme activities of MPO in distinct granule populations. Enzymatic trimming of the Asn355-/Asn391-glycans recapitulated the activity gain and showed that nMPO carrying hyper-truncated glycans at these positions exhibits increased thermal stability, polypeptide accessibility and ceruloplasmin-mediated inhibition potential relative to native nMPO. Finally, molecular modelling revealed that hyper-truncated Asn355-glycans positioned in the MPO-ceruloplasmin interface are critical for uninterrupted inhibition. Here, through an innovative and comprehensive approach, we report novel functional roles of MPO glycans, providing new insight into neutrophil-mediated immunity. American Society for Biochemistry and Molecular Biology 2020-12-10 /pmc/articles/PMC7857493/ /pubmed/33273015 http://dx.doi.org/10.1074/jbc.RA120.016342 Text en © 2020 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Research Article Tjondro, Harry C. Ugonotti, Julian Kawahara, Rebeca Chatterjee, Sayantani Loke, Ian Chen, Siyun Soltermann, Fabian Hinneburg, Hannes Parker, Benjamin L. Venkatakrishnan, Vignesh Dieckmann, Regis Grant, Oliver C. Bylund, Johan Rodger, Alison Woods, Robert J. Karlsson-Bengtsson, Anna Struwe, Weston B. Thaysen-Andersen, Morten Hyper-truncated Asn355- and Asn391-glycans modulate the activity of neutrophil granule myeloperoxidase |
title | Hyper-truncated Asn355- and Asn391-glycans modulate the activity of neutrophil granule myeloperoxidase |
title_full | Hyper-truncated Asn355- and Asn391-glycans modulate the activity of neutrophil granule myeloperoxidase |
title_fullStr | Hyper-truncated Asn355- and Asn391-glycans modulate the activity of neutrophil granule myeloperoxidase |
title_full_unstemmed | Hyper-truncated Asn355- and Asn391-glycans modulate the activity of neutrophil granule myeloperoxidase |
title_short | Hyper-truncated Asn355- and Asn391-glycans modulate the activity of neutrophil granule myeloperoxidase |
title_sort | hyper-truncated asn355- and asn391-glycans modulate the activity of neutrophil granule myeloperoxidase |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7857493/ https://www.ncbi.nlm.nih.gov/pubmed/33273015 http://dx.doi.org/10.1074/jbc.RA120.016342 |
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