Oligomerization of a membrane protein correlates with its retention in the Golgi complex

O A Weisz1, A M Swift, C E Machamer

  • 1Department of Cell Biology and Anatomy, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205.

The Journal of Cell Biology
|September 1, 1993
PubMed

Insights

The M glycoprotein

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Virology

Background:

  • The M glycoprotein of avian coronavirus contains a membrane-spanning domain (m1) crucial for its localization in the cis-Golgi.
  • Proteins efficiently transported to the plasma membrane can be retained in the Golgi when their membrane-spanning domains are replaced with m1.

Purpose of the Study:

  • To investigate the mechanism by which the M glycoprotein's m1 domain mediates Golgi retention.
  • To determine if oligomerization is involved in the retention of chimeric proteins in the Golgi complex.

Main Methods:

  • Construction and analysis of chimeric proteins (Gm1 and alpha m1G) by replacing the membrane-spanning domain of VSV G protein with the M glycoprotein's m1 domain.
  • Analysis of protein oligomerization using SDS-polyacrylamide gel electrophoresis and sucrose gradient centrifugation.
  • Mutagenesis of the m1 domain and assessment of protein localization and oligomerization.
  • Investigation of the role of the cytoplasmic tail and cytoskeletal interactions using proteolytic digestion and cytochalasin D treatment.

Main Results:

  • The chimeric protein Gm1, containing the M glycoprotein's m1 domain, formed stable, SDS-resistant oligomers and was retained in the Golgi.
  • Mutations in the m1 domain that disrupted Golgi retention also abolished SDS-resistant oligomer formation.
  • Oligomerization occurred gradually after synthesis and was dependent on ER to Golgi transport, suggesting a regulated process.
  • The cytoplasmic tail of VSV G protein contributed to SDS resistance, and cytochalasin D treatment inhibited SDS-resistant oligomer formation, implicating cytoskeletal interactions.

Conclusions:

  • The m1 domain of the M glycoprotein mediates Golgi retention through the formation of SDS-resistant oligomers.
  • Oligomerization appears to be a regulated process occurring in the Golgi complex, potentially involving interactions with the actin cytoskeleton.
  • This oligomerization mechanism may be essential for retaining resident proteins within the Golgi complex.

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