Maintenance of Golgi structure and function depends on the integrity of ER export
Open Access
- 12 November 2001
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 155 (4), 557-570
- https://doi.org/10.1083/jcb.200107045
Abstract
The Golgi apparatus comprises an enormous array of components that generate its unique architecture and function within cells. Here, we use quantitative fluorescence imaging techniques and ultrastructural analysis to address whether the Golgi apparatus is a steady-state or a stable organelle. We found that all classes of Golgi components are dynamically associated with this organelle, contrary to the prediction of the stable organelle model. Enzymes and recycling components are continuously exiting and reentering the Golgi apparatus by membrane trafficking pathways to and from the ER, whereas Golgi matrix proteins and coatomer undergo constant, rapid exchange between membrane and cytoplasm. When ER to Golgi transport is inhibited without disrupting COPII-dependent ER export machinery (by brefeldin A treatment or expression of Arf1[T31N]), the Golgi structure disassembles, leaving no residual Golgi membranes. Rather, all Golgi components redistribute into the ER, the cytoplasm, or to ER exit sites still active for recruitment of selective membrane-bound and peripherally associated cargos. A similar phenomenon is induced by the constitutively active Sar1[H79G] mutant, which has the additional effect of causing COPII-associated membranes to cluster to a juxtanuclear region. In cells expressing Sar1[T39N], a constitutively inactive form of Sar1 that completely disrupts ER exit sites, Golgi glycosylation enzymes, matrix, and itinerant proteins all redistribute to the ER. These results argue against the hypothesis that the Golgi apparatus contains stable components that can serve as a template for its biogenesis. Instead, they suggest that the Golgi complex is a dynamic, steady-state system, whose membranes can be nucleated and are maintained by the activities of the Sar1–COPII and Arf1–coatomer systems.Keywords
This publication has 57 references indexed in Scilit:
- Vesicular Tubular Clusters between the ER and Golgi Mediate Concentration of Soluble Secretory Proteins by Exclusion from COPI-Coated VesiclesCell, 1999
- Procollagen Traverses the Golgi Stack without Leaving the Lumen of CisternaeCell, 1998
- GRASP65, a Protein Involved in the Stacking of Golgi CisternaeCell, 1997
- Golgi dispersal during microtubule disruption: regeneration of Golgi stacks at peripheral endoplasmic reticulum exit sites.Molecular Biology of the Cell, 1996
- Sequential coupling between COPII and COPI vesicle coats in endoplasmic reticulum to Golgi transport.The Journal of cell biology, 1995
- Targeting of protein ERGIC-53 to the ER/ERGIC/cis-Golgi recycling pathway.The Journal of cell biology, 1995
- Disruptions in Golgi structure and membrane traffic in a conditional lethal mammalian cell mutant are corrected by epsilon-COP.The Journal of cell biology, 1994
- Sar1 promotes vesicle budding from the endoplasmic reticulum but not Golgi compartments.The Journal of cell biology, 1994
- Coatomer Interaction with Di-Lysine Endoplasmic Reticulum Retention MotifsScience, 1994
- Brefeldin A: insights into the control of membrane traffic and organelle structure.The Journal of cell biology, 1992