Literature DB >> 28739903

Interdomain conformational flexibility underpins the activity of UGGT, the eukaryotic glycoprotein secretion checkpoint.

Pietro Roversi1, Lucia Marti2, Alessandro T Caputo3, Dominic S Alonzi3, Johan C Hill3, Kyle C Dent4, Abhinav Kumar3, Mikail D Levasseur3, Andrea Lia3,2, Thomas Waksman3, Souradeep Basu3, Yentli Soto Albrecht3, Kristin Qian3, James Patrick McIvor3, Colette B Lipp3, Dritan Siliqi5, Snežana Vasiljević3, Shabaz Mohammed3, Petra Lukacik4, Martin A Walsh4, Angelo Santino2, Nicole Zitzmann1.   

Abstract

Glycoproteins traversing the eukaryotic secretory pathway begin life in the endoplasmic reticulum (ER), where their folding is surveyed by the 170-kDa UDP-glucose:glycoprotein glucosyltransferase (UGGT). The enzyme acts as the single glycoprotein folding quality control checkpoint: it selectively reglucosylates misfolded glycoproteins, promotes their association with ER lectins and associated chaperones, and prevents premature secretion from the ER. UGGT has long resisted structural determination and sequence-based domain boundary prediction. Questions remain on how this single enzyme can flag misfolded glycoproteins of different sizes and shapes for ER retention and how it can span variable distances between the site of misfold and a glucose-accepting N-linked glycan on the same glycoprotein. Here, crystal structures of a full-length eukaryotic UGGT reveal four thioredoxin-like (TRXL) domains arranged in a long arc that terminates in two β-sandwiches tightly clasping the glucosyltransferase domain. The fold of the molecule is topologically complex, with the first β-sandwich and the fourth TRXL domain being encoded by nonconsecutive stretches of sequence. In addition to the crystal structures, a 15-Å cryo-EM reconstruction reveals interdomain flexibility of the TRXL domains. Double cysteine point mutants that engineer extra interdomain disulfide bridges rigidify the UGGT structure and exhibit impaired activity. The intrinsic flexibility of the TRXL domains of UGGT may therefore endow the enzyme with the promiscuity needed to recognize and reglucosylate its many different substrates and/or enable reglucosylation of N-linked glycans situated at variable distances from the site of misfold.

Entities:  

Keywords:  UDP-glucose glycoprotein glucosyltransferase; UGGT; endoplasmic reticulum; eukaryotic secretion; glycoprotein folding

Mesh:

Substances:

Year:  2017        PMID: 28739903      PMCID: PMC5559018          DOI: 10.1073/pnas.1703682114

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  51 in total

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