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Proteomic Analysis Identifies Membrane Proteins Dependent on the ER Membrane Protein Complex

  • Songhai Tian
  • , Quan Wu
  • , Bo Zhou
  • , Mei Yuk Choi
  • , Bo Ding
  • , Wei Yang
  • , Min Dong
  • Boston Children's Hospital
  • University of Science and Technology of China
  • Cedars-Sinai Medical Center
  • Brigham and Women’s Hospital
  • Bonacept LLC

Research output: Contribution to journalArticlepeer-review

55 Scopus citations

Abstract

The endoplasmic reticulum (ER) membrane protein complex (EMC) is a key contributor to biogenesis and membrane integration of transmembrane proteins, but our understanding of its mechanisms and the range of EMC-dependent proteins remains incomplete. Here, we carried out an unbiased mass spectrometry (MS)-based quantitative proteomic analysis comparing membrane proteins in EMC-deficient cells to wild-type (WT) cells and identified 36 EMC-dependent membrane proteins and 171 EMC-independent membrane proteins. Of these, six EMC-dependent and six EMC-independent proteins were further independently validated. We found that a common feature among EMC-dependent proteins is that they contain transmembrane domains (TMDs) with polar and/or charged residues. Mutagenesis studies demonstrate that EMC dependency can be converted in cells by removing or introducing polar and/or charged residues within TMDs. Our studies expand the list of validated EMC-dependent and EMC-independent proteins and suggest that the EMC is involved in handling TMDs with residues challenging for membrane integration.

Original languageEnglish
Pages (from-to)2517-2526.e5
JournalCell Reports
Volume28
Issue number10
DOIs
StatePublished - Sep 3 2019

Keywords

  • charged residue
  • EMC
  • ER membrane protein complex
  • ion channels
  • mass spectrometry-based proteomics
  • membrane protein synthesis
  • polar residue
  • transmembrane domain
  • transmembrane domain
  • transporter
  • transporter activity

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