Literature DB >> 29601100

Structural Analysis of a GalNAc-T2 Mutant Reveals an Induced-Fit Catalytic Mechanism for GalNAc-Ts.

Matilde de Las Rivas1, Helena Coelho2,3,4, Ana Diniz2, Erandi Lira-Navarrete5, Ismael Compañón6, Jesús Jiménez-Barbero3,4,7, Katrine T Schjoldager5, Eric P Bennett5, Sergey Y Vakhrushev5, Henrik Clausen5, Francisco Corzana6, Filipa Marcelo2, Ramon Hurtado-Guerrero1,8.   

Abstract

The family of polypeptide N-acetylgalactosamine (GalNAc) transferases (GalNAc-Ts) orchestrates the initiating step of mucin-type protein O-glycosylation by transfer of GalNAc moieties to serine and threonine residues in proteins. Deficiencies and dysregulation of GalNAc-T isoenzymes are related to different diseases. Recently, it has been demonstrated that an inactive GalNAc-T2 mutant (F104S), which is not located at the active site, induces low levels of high-density lipoprotein cholesterol (HDL-C) in humans. Herein, the molecular basis for F104S mutant inactivation has been deciphered. Saturation transfer difference NMR spectroscopy experiments demonstrate that the mutation induces loss of binding to peptide substrates. Analysis of the crystal structure of the F104S mutant bound to UDP-GalNAc (UDP=uridine diphosphate), combined with molecular dynamics (MD) simulations, has revealed that the flexible loop is disordered and displays larger conformational changes in the mutant enzyme than that in the wild-type (WT) enzyme. 19 F NMR spectroscopy experiments reveal that the WT enzyme only reaches the active state in the presence of UDP-GalNAc, which provides compelling evidence that GalNAc-T2 adopts a UDP-GalNAc-dependent induced-fit mechanism. The F104S mutation precludes the enzyme from achieving the active conformation and concomitantly binding peptide substrates. This study provides new insights into the catalytic mechanism of the large family of GalNAc-Ts and how these enzymes orchestrate protein O-glycosylation.
© 2018 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  enzymes; glycosylation; mutagenesis; oligomers; structure-activity relationships

Mesh:

Substances:

Year:  2018        PMID: 29601100     DOI: 10.1002/chem.201800701

Source DB:  PubMed          Journal:  Chemistry        ISSN: 0947-6539            Impact factor:   5.236


  12 in total

1.  Molecular basis for fibroblast growth factor 23 O-glycosylation by GalNAc-T3.

Authors:  Matilde de Las Rivas; Earnest James Paul Daniel; Yoshiki Narimatsu; Ismael Compañón; Kentaro Kato; Pablo Hermosilla; Aurélien Thureau; Laura Ceballos-Laita; Helena Coelho; Pau Bernadó; Filipa Marcelo; Lars Hansen; Ryota Maeda; Anabel Lostao; Francisco Corzana; Henrik Clausen; Thomas A Gerken; Ramon Hurtado-Guerrero
Journal:  Nat Chem Biol       Date:  2020-01-13       Impact factor: 15.040

2.  Probing the contribution of individual polypeptide GalNAc-transferase isoforms to the O-glycoproteome by inducible expression in isogenic cell lines.

Authors:  John Hintze; Zilu Ye; Yoshiki Narimatsu; Thomas Daugbjerg Madsen; Hiren J Joshi; Christoffer K Goth; Adam Linstedt; Collin Bachert; Ulla Mandel; Eric P Bennett; Sergey Y Vakhrushev; Katrine T Schjoldager
Journal:  J Biol Chem       Date:  2018-10-16       Impact factor: 5.157

3.  FUT8-Directed Core Fucosylation of N-glycans Is Regulated by the Glycan Structure and Protein Environment.

Authors:  Ana García-García; Sonia Serna; Zhang Yang; Ignacio Delso; Víctor Taleb; Thomas Hicks; Raik Artschwager; Sergey Y Vakhrushev; Henrik Clausen; Jesús Angulo; Francisco Corzana; Niels C Reichardt; Ramon Hurtado-Guerrero
Journal:  ACS Catal       Date:  2021-07-08       Impact factor: 13.700

Review 4.  Polypeptide GalNAc-Ts: from redundancy to specificity.

Authors:  Matilde de Las Rivas; Erandi Lira-Navarrete; Thomas A Gerken; Ramon Hurtado-Guerrero
Journal:  Curr Opin Struct Biol       Date:  2019-01-28       Impact factor: 6.809

5.  Ser and Thr acceptor preferences of the GalNAc-Ts vary among isoenzymes to modulate mucin-type O-glycosylation.

Authors:  Earnest James Paul Daniel; Matilde Las Rivas; Erandi Lira-Navarrete; Ana García-García; Ramon Hurtado-Guerrero; Henrik Clausen; Thomas A Gerken
Journal:  Glycobiology       Date:  2020-10-21       Impact factor: 4.313

6.  UDP-N-acetyl-α-D-galactosamine:polypeptide N-acetylgalactosaminyltransferase from the snail Biomphalaria glabrata - structural reflections.

Authors:  Aysegül Turupcu; Peter Poliak; Christian Margreitter; Chris Oostenbrink; Erika Staudacher
Journal:  Glycoconj J       Date:  2019-08-08       Impact factor: 3.009

7.  Protein O-Fucosyltransferase 1 Undergoes Interdomain Flexibility in Solution.

Authors:  Erandi Lira-Navarrete; María Carmen Pallarés; Fabio Castello; Maria J Ruedas-Rama; Angel Orte; Anabel Lostao; Ramón Hurtado-Guerrero
Journal:  Molecules       Date:  2021-04-07       Impact factor: 4.411

8.  NleB/SseK-catalyzed arginine-glycosylation and enteropathogen virulence are finely tuned by a single variable position contiguous to the catalytic machinery.

Authors:  Ana García-García; Thomas Hicks; Samir El Qaidi; Congrui Zhu; Philip R Hardwidge; Jesús Angulo; Ramon Hurtado-Guerrero
Journal:  Chem Sci       Date:  2021-08-19       Impact factor: 9.825

9.  The structure of the colorectal cancer-associated enzyme GalNAc-T12 reveals how nonconserved residues dictate its function.

Authors:  Amy J Fernandez; Earnest James Paul Daniel; Sai Pooja Mahajan; Jeffrey J Gray; Thomas A Gerken; Lawrence A Tabak; Nadine L Samara
Journal:  Proc Natl Acad Sci U S A       Date:  2019-09-23       Impact factor: 11.205

Review 10.  Novel NMR Avenues to Explore the Conformation and Interactions of Glycans.

Authors:  Pablo Valverde; Jon I Quintana; Jose I Santos; Ana Ardá; Jesús Jiménez-Barbero
Journal:  ACS Omega       Date:  2019-08-19
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