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Autophagy, cathepsin L transport, and acidification in cultured rat fibroblasts
E L Punnonen1, S Autio, V S Marjomäki
1Department of Cell Biology, University of Jyväskylä, Finland.
Abstract:
The mechanisms of enzyme delivery to and acidification of early autophagic vacuoles in cultured fibroblasts were elucidated by cryoimmunoelectron microscopic methods. The cation-independent mannose-6-phosphate receptor (MPR) was used as a marker of the pre-lysosomal compartment, and cathepsin L and an acidotropic amine (3-(2,4-dinitroanilino)-3'-amino-N-methyl-dipropylamine (DAMP), a cytochemical probe for low-pH organelles) as markers of both pre-lysosomal and lysosomal compartments. In addition, cationized ferritin was used as an endocytic marker. In ultrastructural double labeling experiments, the bulk of all the antigens was found in vesicles containing tightly packed membrane material. These vesicles also contained small amounts of endocytosed ferritin and probably correspond to the MPR-enriched pre-lysosomal compartment. Some immunolabeling was also visible in the trans-Golgi network. In addition, cathepsin L, DAMP, and large amounts of ferritin were found in smaller vesicles which can be classified as mature lysosomes. Early autophagic vacuoles were defined as vesicles containing recognizable cytoplasm. MPR, cathepsin L, and DAMP, but not ferritin, were detected in the early vacuoles. Inhibition of the acidification in the early vacuoles by monensin did not prevent the delivery of MPR and cathepsin L. The presence of MPR in the vacuoles suggests that cathepsin L is not delivered to early autophagic vacuoles solely by fusion with mature, MPR-deficient lysosomes. Furthermore, although lysosomes were loaded with endocytosed ferritin, it was not detected in autophagic vacuoles. Either the trans-Golgi network or the MPR-enriched pre-lysosomes may be the main source of enzymes and acidification machinery for the autophagic vacuoles in fibroblasts.(ABSTRACT TRUNCATED AT 250 WORDS)
Insights
Researchers used advanced microscopy to track enzyme delivery to early autophagic vacuoles in fibroblasts. Findings suggest the trans-Golgi network or pre-lysosomes, not mature lysosomes, supply essential enzymes and acidification mechanisms.
Area of Science:
- Cell Biology
- Autophagy Research
- Lysosome Biogenesis
Background:
- Autophagy is a crucial cellular process for degrading damaged components.
- Understanding the origin of enzymes and acidification in early autophagic vacuoles is key to cellular health.
Purpose of the Study:
- To elucidate the mechanisms of enzyme delivery and acidification in early autophagic vacuoles.
- To identify the primary sources of lysosomal enzymes and pH regulation in fibroblasts.
Main Methods:
- Cryo-immunoelectron microscopy was employed for high-resolution ultrastructural analysis.
- Cation-independent mannose-6-phosphate receptor (MPR) and cathepsin L were used as enzyme markers.
- Cytochemical probes like DAMP and cationized ferritin tracked organelle pH and endocytosis.
Main Results:
- Early autophagic vacuoles contained MPR, cathepsin L, and DAMP, indicating enzyme delivery and acidification.
- Inhibition of acidification did not halt MPR and cathepsin L delivery to early vacuoles.
- Mature lysosomes contained endocytosed ferritin, which was absent in autophagic vacuoles.
Conclusions:
- Cathepsin L delivery to early autophagic vacuoles likely involves MPR-enriched pre-lysosomes or the trans-Golgi network.
- Mature lysosomes are not the sole source of enzymes for autophagic vacuoles.
- The trans-Golgi network or pre-lysosomes are probable sources for autophagic vacuole enzymes and acidification machinery.