"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

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.

Related Concept Videos

Maturation of Endosomes01:28

Maturation of Endosomes

The early endosome containing internalized molecules matures through transformations in its location, morphology, intraluminal pH, and membrane protein composition. Together, these changes result in a more acidic late endosome that contains multiple intraluminal vesicles; therefore, the late endosome is also called a multivesicular body (MVB).
Changes in location
The maturing endosome moves along microtubules from the periphery of the cell towards the perinuclear region. This movement of the...
Intralumenal Vesicles and Multivesicular Bodies01:38

Intralumenal Vesicles and Multivesicular Bodies

Intraluminal vesicles (ILVs) are small vesicles 50-80 nm in diameter formed during the maturation of early endosomes. A specialized endosome containing numerous ILVs is called a multivesicular body (MVB). ILVs contain internalized molecules such as antigens, nucleic acids, proteins, and metabolites. Some of these molecules are released from the MVBs inside exosomes and are transported to other cells. Other MVBs contain molecules that are retained in the ILVs and are later degraded within the...
The Neuromuscular Junction01:19

The Neuromuscular Junction

The nervous system consists of complex motor neuron circuits, including upper motor neurons originating from the cerebral cortex and lower motor neurons starting in the spinal cord, coordinating both voluntary and involuntary movements. Among these, somatic motor neurons activate skeletal muscles and are classified into alpha, beta, and gamma types. Alpha neurons are vital for voluntary movement coordination, while gamma neurons adjust muscle spindle sensitivity, and the function of beta...
The Early Endosome: Endocytosis of Transferrin01:28

The Early Endosome: Endocytosis of Transferrin

Essential proteins such as insulin or low-density lipoprotein (LDL) and micronutrients such as iron enter a eukaryotic cell through receptor-mediated endocytosis. Subsequently, the early endosomes fuse with the vesicles containing such receptor-ligand complexes and play a vital role in sorting the incoming ligands and receptors. While the ligands are either degraded inside the vesicle or released into the cytosol, their receptors are returned to the plasma membrane for further rounds of...
Fusion of Secretory Vesicles with the Plasma Membrane01:26

Fusion of Secretory Vesicles with the Plasma Membrane

Proteins and neurotransmitters in secretory vesicles can be released from a cell upon vesicle docking, priming, and fusion with the plasma membrane. Vesicles are docked and primed in preparation for the quick exocytosis of their contents in response to a stimulus. The fusion process is mainly carried out by a SNAP Receptor or SNARE complex, consisting of synaptobrevin, syntaxin-1, and SNAP-25.
In 1993, Jim Rothman proposed that the antiparallel pairing of vesicular and transmembrane SNAREs, or...
Assembly of Complex Microtubule Structures01:32

Assembly of Complex Microtubule Structures

Complex microtubule structures are present in resting cells and in dividing cells. In resting cells, they are responsible for maintaining the cellular architecture, tracks for intracellular transport, positioning of organelles, assembly of cilia and flagella. They mediate the bipolar spindle assembly for chromosomal segregation and positioning of the cell division plate in dividing cells. The formation of microtubule complex structures depends on the cell type, cell stage, and cell function.