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Isolation of Specific Neuron Populations from Roundworm Caenorhabditis elegans
Published on: August 6, 2019
Neuropathology of degenerative cell death in Caenorhabditis elegans
D H Hall1, G Gu, J García-Añoveros
1Department of Neurosciences, Albert Einstein College of Medicine, Bronx, New York 10461, USA.
Abstract:
In Caenorhabditis elegans necrosis-like neuronal death is induced by gain-of-function (gf) mutations in two genes, mec-4 and deg-1, that encode proteins similar to subunits of the vertebrate amiloride-sensitive epithelial Na+ channel. We have determined the progress of cellular pathology in dying neurons via light and electron microscopy. The first detectable abnormality is an infolding of the plasma membrane and the production of small electron-dense whorls. Later, cytoplasmic vacuoles and larger membranous whorls form, and the cell swells. More slowly, chromatin aggregates and the nucleus invaginates. Mitochondria and Golgi are not dramatically affected until the final stages of cell death when organelles, and sometimes the cells themselves, lyse. Certain cells, including some muscle cells in deg-1 animals, express the abnormal gene products and display a few membrane abnormalities but do not die. These cells either express the mutant genes at lower levels, lack other proteins needed to form inappropriately functioning channels, or are better able to compensate for the toxic effects of the channels. Overall, the ultrastructural changes in these deaths suggest that enhanced membrane cycling precedes vacuolation and cell swelling. The pathology of mec-4(gf) and deg-1(gf) cells shares features with that of genetic disorders with alterations in channel subunits, such as hypokalemic periodic paralysis in humans and the weaver mouse, and with degenerative conditions, e.g., acute excitotoxic death. The initial pathology in all of these conditions may reflect attempts by affected cells to compensate for abnormal membrane proteins or functions.
Insights
Necrosis-like neuronal death in C. elegans, induced by mutations in mec-4 and deg-1 genes, begins with plasma membrane abnormalities. These cellular changes precede vacuolation and cell swelling, offering insights into neurodegenerative conditions.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Gain-of-function mutations in mec-4 and deg-1 genes induce necrosis-like neuronal death in C. elegans.
- These genes encode proteins similar to amiloride-sensitive epithelial Na+ channel subunits.
Purpose of the Study:
- To determine the progression of cellular pathology in neurons undergoing necrosis-like death.
- To compare the ultrastructural changes with human and mouse genetic disorders and degenerative conditions.
Main Methods:
- Light and electron microscopy were used to observe cellular pathology.
- Analysis of ultrastructural changes in dying neurons of C. elegans.
Main Results:
- The initial abnormality observed is plasma membrane infolding and formation of electron-dense whorls.
- Subsequent changes include cytoplasmic vacuolation, cell swelling, chromatin aggregation, and nuclear invagination.
- Mitochondria and Golgi are affected in the final stages, leading to organelle and cell lysis.
Conclusions:
- Ultrastructural changes suggest enhanced membrane cycling precedes vacuolation and cell swelling in these neuronal deaths.
- The pathology shares similarities with human channelopathies like hypokalemic periodic paralysis and mouse models like weaver, as well as excitotoxic death.
- Initial cellular pathology may represent compensatory mechanisms for abnormal membrane proteins or functions.

