Abstract
Intracisternal granules (ICGs) are insoluble aggregates of pancreatic digestive enzymes and proenzymes that develop within the lumen of the rough endoplasmic reticulum of exocrine pancreatic cells, especially in guinea pigs. These ICGs are eliminated by autophagy. By morphological criteria, we identified three distinct and sequential classes of autophagic compartments, which we refer to as phagophores, Type I autophagic vacuoles, and Type II autophagic vacuoles. Lobules of guinea pig pancreas were incubated in media containing HRP for periods of 5-120 min to determine the relationship between the endocytic and autophagic pathways. Incubations with HRP of 15 min or less labeled early endosomes at the cell periphery that were not involved in autophagy of ICGs, but after these short incubations none of the autophagic compartments were HRP positive. After 30-min incubation with HRP, early endosomes at the cell periphery, late endosomes in the pericentriolar region, and, in addition, Type I autophagic vacuoles containing ICGs were all labeled by the tracer. Type II autophagic vacuoles were not labeled after 30-min incubation with HRP but were labeled after incubations of 60-120 min. Phagophores did not receive HRP even after 120 min incubations. We concluded that the autophagic and endocytic pathways converge immediately after the early endosome level and that Type I autophagic vacuoles precede Type II autophagic vacuoles on the endocytic pathway. We studied the distribution of acid phosphatase, lysosomal proteases and cation-independent-mannose-6-phosphate receptor (CI-M6PR) in the three classes of autophagic compartments by histochemical and immunocytochemical methods. Phagophores, the earliest autophagic compartment, contained none of these markers. Type I autophagic vacuoles contained acid phosphatase but, at most, only very low levels of cathepsin D and CI-M6PR. Type II autophagic vacuoles, by contrast, are enriched for acid phosphatase, cathepsin D, and other lysosomal enzymes, and they are also enriched for CI-M6PR. Moreover, soluble fragments of bovine CI-M6PR conjugated to colloidal gold particles heavily labeled Type II but not Type I autophagic vacuoles, and this labeling was specifically blocked by mannose-6-phosphate. This indicates that the lysosomal enzymes present in Type II autophagic vacuoles carry mannose-6-phosphate monoester residues. Using 3-C2, 4-dinitroanilino-3'-amino-N-methyldipropylamine (DAMP), we showed that Type II autophagic vacuoles are acidic. We interpret these findings as indicating that Type II autophagic vacuoles are a prelysosomal compartment in which the already combined endocytic and autophagic pathways meet the delivery pathway of lysosomal enzymes.
MeSH Terms
Acid Phosphatase/analysis
Animals
Autophagy
Cathepsins/analysis
Endocytosis
Guinea Pigs
Histocytochemistry
Horseradish Peroxidase/metabolism
Lysosomes/enzymology
Mannosephosphates/metabolism
Microscopy, Electron
Microtubules/drug effects,ultrastructure
Models, Biological
Nocodazole/pharmacology
Pancreas/metabolism,ultrastructure
Phagocytosis
Receptor, IGF Type 2
Receptors, Cell Surface/metabolism
Vacuoles/metabolism,ultrastructure
Chemicals
Mannosephosphates
Receptor, IGF Type 2
Receptors, Cell Surface
Horseradish Peroxidase
Acid Phosphatase
Cathepsins
Nocodazole
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Tooze J
European Molecular Biology Laboratory, Heidelberg, Federal Republic of Germany.
Hollinshead M
Ludwig T
Howell K
Hoflack B
Kern H
References (29)
29 references, click to expand
-
Studies on the guinea pig pancreas. Parallel discharge of exocrine enzyme activities.
J Biol Chem. 1975 Apr 10;250(7):2660-70
PMID: 1123325
-
[E: [Electron microscopic studies on the action of cobalt chloride on the exocrine pancreatic tissue in guinea pigs].
Virchows Arch B Cell Pathol. 1969;4(1):54-70
PMID: 4982325
-
A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding.
Anal Biochem. 1976 May 7;72:248-54
PMID: 942051
-
Studies of the secretory process in the mammalian exocrine pancreas. I. The condensing vacuoles.
J Cell Biol. 1977 Oct;75(1):148-65
PMID: 914894
-
Disproportional immunostaining patterns of two secretory proteins in guinea pig and rat exocrine pancreatic cells. An immunoferritin and fluorescence study.
Eur J Cell Biol. 1980 Apr;21(1):93-100
PMID: 6155266
-
Pathways of endocytosis from luminal plasma membrane in rat exocrine pancreas.
Eur J Cell Biol. 1980 Jun;21(2):141-50
PMID: 6156834
-
Immunochemistry on ultrathin frozen sections.
Histochem J. 1980 Jul;12(4):381-403
PMID: 7440248
-
"Western blotting": electrophoretic transfer of proteins from sodium dodecyl sulfate--polyacrylamide gels to unmodified nitrocellulose and radiographic detection with antibody and radioiodinated protein A.
Anal Biochem. 1981 Apr;112(2):195-203
PMID: 6266278
-
Visualization of acidic organelles in intact cells by electron microscopy.
Proc Natl Acad Sci U S A. 1984 Aug;81(15):4838-42
PMID: 6146980
-
Hormonal stimulation in the exocrine pancreas results in coordinate and anticoordinate regulation of protein synthesis.
J Cell Biol. 1984 Nov;99(5):1569-74
PMID: 6208198
-
Vesicles and cisternae in the trans Golgi apparatus of human fibroblasts are acidic compartments.
Cell. 1985 Mar;40(3):635-43
PMID: 3882239
-
On the preparation of cryosections for immunocytochemistry.
J Ultrastruct Res. 1984 Oct;89(1):65-78
PMID: 6544882
-
Three-dimensional structure of endosomes in BHK-21 cells.
Proc Natl Acad Sci U S A. 1986 May;83(9):2899-903
PMID: 3458249
-
The mannose 6-phosphate receptor and the biogenesis of lysosomes.
Cell. 1988 Feb 12;52(3):329-41
PMID: 2964276
-
Prelysosomal convergence of autophagic and endocytic pathways.
Biochem Biophys Res Commun. 1988 Feb 29;151(1):40-7
PMID: 3126737
-
Degradation from the endoplasmic reticulum: disposing of newly synthesized proteins.
Cell. 1988 Jul 15;54(2):209-20
PMID: 3292055
-
A prelysosomal compartment sequesters membrane-impermeant fluorescent dyes from the cytoplasmic matrix of J774 macrophages.
J Cell Biol. 1988 Sep;107(3):887-96
PMID: 3417786
-
Selective degradation of T cell antigen receptor chains retained in a pre-Golgi compartment.
J Cell Biol. 1988 Dec;107(6 Pt 1):2149-61
PMID: 2974039
-
Characterization of the early endosome and putative endocytic carrier vesicles in vivo and with an assay of vesicle fusion in vitro.
J Cell Biol. 1989 Apr;108(4):1301-16
PMID: 2538480
-
Condensation-sorting events in the rough endoplasmic reticulum of exocrine pancreatic cells.
J Cell Biol. 1989 Jul;109(1):35-50
PMID: 2745555
-
The structure of organelles of the endocytic pathway in hydrated cryosections of cultured cells.
Eur J Cell Biol. 1989 Aug;49(2):281-94
PMID: 2476311
-
Membrane traffic in endocytosis: insights from cell-free assays.
Annu Rev Cell Biol. 1989;5:453-81
PMID: 2557061
-
The biogenesis of lysosomes.
Annu Rev Cell Biol. 1989;5:483-525
PMID: 2557062
-
Intracellular degradation of unassembled asialoglycoprotein receptor subunits: a pre-Golgi, nonlysosomal endoproteolytic cleavage.
J Cell Biol. 1989 Dec;109(6 Pt 2):3315-24
PMID: 2513329
-
A peptide sequence confers retention and rapid degradation in the endoplasmic reticulum.
Science. 1990 Jan 5;247(4938):79-82
PMID: 2294595
-
The gamma and epsilon subunits of the CD3 complex inhibit pre-Golgi degradation of newly synthesized T cell antigen receptors.
J Cell Biol. 1990 Apr;110(4):973-86
PMID: 2139038
-
Characterization of the cation-independent mannose 6-phosphate receptor-enriched prelysosomal compartment in NRK cells.
J Cell Sci. 1990 Mar;95 ( Pt 3):441-61
PMID: 2166740
-
Intracisternal granules in the exocrine cells of the pancreas.
J Biophys Biochem Cytol. 1956 Jul 25;2(4):417-22
PMID: 13357506
-
Two-dimensional gel analysis of soluble proteins. Charaterization of guinea pig exocrine pancreatic proteins.
J Biol Chem. 1975 Jul 25;250(14):5375-85
PMID: 1141235