A quantitative model of traffic between plasma membrane and secondary lysosomes: evaluation of inflow, lateral diffusion, and degradation.
Open Access
- 1 December 1988
- journal article
- research article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 107 (6) , 2109-2115
- https://doi.org/10.1083/jcb.107.6.2109
Abstract
We present here a mathematical model that accounts for the various proportions of plasma membrane constituents occurring in the lysosomal membrane of rat fibroblasts (Draye, J.-P., J. Quintart, P.J. Courtoy, and P. Baudhuin. 1987. Eur. J. Biochem. 170: 395-403; Draye, J.-P., P. J. Courtoy, J. Quintart, and P. Baudhuin. 1987. Eur. J. Biochem. 170:405-411). It is based on contents of plasma membranes markers in purified lysosomal preparations, evaluations of their half-life in lysosomes and measurements of areas of lysosomal and plasma membranes by morphometry. In rat fibroblasts, structures labeled by a 2-h uptake of horseradish peroxidase followed by a 16-h chase (i.e., lysosomes) occupy 3% of the cellular volume and their total membrane area corresponds to 30% of the pericellular membrane area. Based on the latter values, the model predicts the rate of inflow and outflow of plasma membrane constituents into lysosomal membrane, provided their rate of degradation is known. Of the bulk of polypeptides iodinated at the cell surface, only 4% reach the lysosomes every hour, where the major part (.apprx. 83%) is degraded with a half-life in lysosomes of .apprx. 0.8 h. For specific plasma membrane constituents, this model can further account for differences in the association of the lysosomal membrane by variations in the rate either of lysosomal degradation, of inflow along the pathway from the pericellular membrane to the lysosomes, or of lateral diffusion.This publication has 33 references indexed in Scilit:
- Shift of equilibrium density induced by 3,3'-diaminobenzidine cytochemistry: a new procedure for the analysis and purification of peroxidase-containing organelles.The Journal of cell biology, 1984
- Internalization and recycling of plasma membrane glycoconjugates during pinocytosis in the macrophage cell line, P388D1Experimental Cell Research, 1983
- Endocytosis and the recycling of plasma membrane.The Journal of cell biology, 1983
- Pinocytosis in mouse L-fibroblasts: ultrastructural evidence for a direct membrane shuttle between the plasma membrane and the lysosomal compartment.The Journal of cell biology, 1982
- Characterization of the membrane proteins of rat liver lysosomes. Composition, enzyme activities and turnoverBiochemical Journal, 1982
- Evidence for a continual exchange of 5′-nucleotidase between the cell surface and cytoplasmic membranes in cultured rat fibroblastsCell, 1982
- Exocytosis of pinocytosed fluid in cultured cells: kinetic evidence for rapid turnover and compartmentation.The Journal of cell biology, 1981
- The membrane proteins of the vacuolar system. II. Bidirectional flow between secondary lysosomes and plasma membrane.The Journal of cell biology, 1980
- Fate of plasma membrane during endocytosis. I. Uptake and processing of anti-plasma membrane and control immunoglobulins by cultured fibroblasts.The Journal of cell biology, 1979
- Studies on glucosaminidase. 4. The fluorimetric assay of N-acetyl-β-glucosaminidaseBiochemical Journal, 1961