Kinetic Analysis of Secretory Protein Traffic and Characterization of Golgi to Plasma Membrane Transport Intermediates in Living Cells
Open Access
- 14 December 1998
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 143 (6), 1485-1503
- https://doi.org/10.1083/jcb.143.6.1485
Abstract
Quantitative time-lapse imaging data of single cells expressing the transmembrane protein, vesicular stomatitis virus ts045 G protein fused to green fluorescent protein (VSVG-GFP), were used for kinetic modeling of protein traffic through the various compartments of the secretory pathway. A series of first order rate laws was sufficient to accurately describe VSVG-GFP transport, and provided compartment residence times and rate constants for transport into and out of the Golgi complex and delivery to the plasma membrane. For ER to Golgi transport the mean rate constant (i.e., the fraction of VSVG-GFP moved per unit of time) was 2.8% per min, for Golgi to plasma membrane transport it was 3.0% per min, and for transport from the plasma membrane to a degradative site it was 0.25% per min. Because these rate constants did not change as the concentration of VSVG-GFP in different compartments went from high (early in the experiment) to low (late in the experiment), secretory transport machinery was never saturated during the experiments. The processes of budding, translocation, and fusion of post-Golgi transport intermediates carrying VSVG- GFP to the plasma membrane were also analyzed using quantitative imaging techniques. Large pleiomorphic tubular structures, rather than small vesicles, were found to be the primary vehicles for Golgi to plasma membrane transport of VSVG-GFP. These structures budded as entire domains from the Golgi complex and underwent dynamic shape changes as they moved along microtubule tracks to the cell periphery. They carried up to 10,000 VSVG-GFP molecules and had a mean life time in COS cells of 3.8 min. In addition, they fused with the plasma membrane without intersecting other membrane transport pathways in the cell. These properties suggest that the post-Golgi intermediates represent a unique transport organelle for conveying large quantities of protein cargo from the Golgi complex directly to the plasma membrane.Keywords
This publication has 75 references indexed in Scilit:
- Protein Sorting by Transport VesiclesScience, 1996
- Double labelling of subcellular structures with organelle-targeted GFP mutants in vivoCurrent Biology, 1996
- Engineering green fluorescent protein for improved brightness, longer wavelengths and fluorescence resonance energy transferCurrent Biology, 1996
- Chimeric green fluorescent protein as a tool for visualizing subcellular organelles in living cellsCurrent Biology, 1995
- HVEM tomography of the trans-Golgi network: structural insights and identification of a lace-like vesicle coat.The Journal of cell biology, 1994
- Vesicular stomatitis virus glycoprotein is sorted and concentrated during export from the endoplasmic reticulumCell, 1994
- Trimeric G‐proteins of the trans‐Golgi network are involved in the formation of constitutive secretory vesicles and immature secretory granulesFEBS Letters, 1991
- The trans Golgi Network: Sorting at the Exit Site of the Golgi ComplexScience, 1986
- Structural aspects of the membrane of the endoplasmic reticulumBiochimica et Biophysica Acta (BBA) - Reviews on Biomembranes, 1975
- Intracellular Aspects of the Process of Protein SynthesisScience, 1975