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Molecular Stressors Engender Protein Connectivity Dysfunction through Aberrant N-Glycosylation of a Chaperone

  • Pengrong Yan
  • , Hardik J. Patel
  • , Sahil Sharma
  • , Adriana Corben
  • , Tai Wang
  • , Palak Panchal
  • , Chenghua Yang
  • , Weilin Sun
  • , Thais L. Araujo
  • , Anna Rodina
  • , Suhasini Joshi
  • , Kenneth Robzyk
  • , Srinivasa Gandu
  • , Julie R. White
  • , Elisa de Stanchina
  • , Shanu Modi
  • , Yelena Y. Janjigian
  • , Elizabeth G. Hill
  • , Bei Liu
  • , Hediye Erdjument-Bromage
  • Thomas A. Neubert, Nanette L.S. Que, Zihai Li, Daniel T. Gewirth, Tony Taldone, Gabriela Chiosis
  • Memorial Sloan-Kettering Cancer Center
  • Icahn School of Medicine at Mount Sinai
  • University of Chinese Academy of Sciences
  • Medical University of South Carolina
  • Ohio State University
  • New York University
  • Hauptman-Woodward Medical Research Institute, Inc.

Research output: Contribution to journalArticlepeer-review

56 Scopus citations

Abstract

Stresses associated with disease may pathologically remodel the proteome by both increasing interaction strength and altering interaction partners, resulting in proteome-wide connectivity dysfunctions. Chaperones play an important role in these alterations, but how these changes are executed remains largely unknown. Our study unveils a specific N-glycosylation pattern used by a chaperone, Glucose-regulated protein 94 (GRP94), to alter its conformational fitness and stabilize a state most permissive for stable interactions with proteins at the plasma membrane. This “protein assembly mutation’ remodels protein networks and properties of the cell. We show in cells, human specimens, and mouse xenografts that proteome connectivity is restorable by inhibition of the N-glycosylated GRP94 variant. In summary, we provide biochemical evidence for stressor-induced chaperone-mediated protein mis-assemblies and demonstrate how these alterations are actionable in disease.

Original languageEnglish
Article number107840
JournalCell Reports
Volume31
Issue number13
DOIs
StatePublished - Jun 30 2020

Keywords

  • GRP94
  • aberrant N-glycosylation
  • aberrant protein-protein interaction
  • cellular stress
  • chaperome-mediated protein connectivity dysfunction
  • epichaperome
  • protein mis-assembly
  • stable protein assembly
  • stress-mediated molecular dysfunction
  • targeted protein degradation-based therapeutics

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