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Updated: May 21, 2026

Visualization of Endosome Dynamics in Living Nerve Terminals with Four-dimensional Fluorescence Imaging
Published on: April 16, 2014
"Late" macroendosomes and acidic endosomes in vertebrate motor nerve terminals
Richard S Stewart1, Haibing Teng, Robert S Wilkinson
1Department of Cell Biology and Physiology, Washington University School of Medicine, St. Louis, Missouri 63110, USA. wilk@wustl.edu
Abstract:
Activity at the vertebrate nerve-muscle synapse creates large macroendosomes (MEs) via bulk membrane infolding. Visualized with the endocytic probe FM1-43, most (94%) of the ∼25 MEs/terminal created by brief (30-Hz, 18-second) stimulation dissipate rapidly (∼1 minute) into vesicles. Others, however, remain for hours. Here we study these "late" MEs by using 4D live imaging over a period of ∼1 hour after stimulation. We find that some (51/398 or 13%) disappear spontaneously via exocytosis, releasing their contents into the extracellular milieu. Others (at least 15/1,960 or 1%) fuse or closely associate with a second class of endosomes that take up acidophilic dyes (acidic endosomes [AEs]). AEs are plentiful (∼47/terminal) and exist independent of stimulation. Unlike MEs, which exhibit Brownian motion, AEs exhibit directed motion (average, 83 nm/sec) on microtubules within and among terminal boutons. AEs populate the axon as well, where movement is predominantly retrograde. They share biochemical and immunohistochemical markers (e.g., lysosomal-associated membrane protein [LAMP-1]) with lysosomes. Fusion/association of MEs with AEs suggests a sorting/degradation pathway in nerve terminals wherein the role of AEs is similar to that of lysosomes. Based on our data, we propose that MEs serve as sorting endosomes. Thus their contents, which include plasma membrane proteins, vesicle proteins, and extracellular levels of Ca(2+) , can be targeted either toward the reformation and budding of synaptic vesicles, toward secretion via exocytosis, or toward a degradation process that utilizes AEs either for lysis within the terminal or for transport toward the cell body.
Insights
Newly identified late macroendosomes (MEs) at nerve terminals can be secreted via exocytosis or fuse with acidic endosomes (AEs) for degradation, suggesting MEs act as sorting endosomes.
Area of Science:
- Neuroscience
- Cell Biology
- Synaptic Plasticity
Background:
- Nerve activity generates macroendosomes (MEs) at the nerve-muscle synapse.
- Most MEs rapidly dissipate, but a subset persists for hours.
Purpose of the Study:
- To investigate the fate and function of long-lived macroendosomes (MEs) at nerve terminals.
- To characterize the properties and interactions of persistent MEs with other endosomes.
Main Methods:
- Utilized 4D live imaging to track macroendosomes (MEs) over an hour post-stimulation.
- Employed FM1-43 staining to visualize MEs and acidophilic dyes for acidic endosomes (AEs).
- Examined ME and AE movement patterns and molecular markers (e.g., LAMP-1).
Main Results:
- 13% of late MEs were secreted via exocytosis; 1% fused with or associated with acidic endosomes (AEs).
- AEs exhibit directed motion on microtubules and share lysosomal markers.
- MEs exhibit Brownian motion, while AEs show directed, retrograde axonal transport.
Conclusions:
- Macroendosomes (MEs) function as sorting endosomes at nerve terminals.
- Persistent MEs are processed through exocytosis or fusion with acidic endosomes (AEs) for degradation or transport.
- This pathway suggests a role for AEs in lysosome-like functions within nerve terminals.
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