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| DOI | 10.1186/S10020-024-00942-4 | ||||
| Año | 2024 | ||||
| Tipo | artículo de investigación |
Citas Totales
Autores Afiliación Chile
Instituciones Chile
% Participación
Internacional
Autores
Afiliación Extranjera
Instituciones
Extranjeras
Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease characterized by the loss of motoneurons (MNs), and despite progress, there is no effective treatment. A large body of evidence shows that astrocytes expressing ALS-linked mutant proteins cause non-cell autonomous toxicity of MNs. Although MNs innervate muscle fibers and ALS is characterized by the early disruption of the neuromuscular junction (NMJ) and axon degeneration, there are controversies about whether muscle contributes to non-cell-autonomous toxicity to MNs. In this study, we generated primary skeletal myotubes from myoblasts derived from ALS mice expressing human mutant SOD1G93A (termed hereafter mutSOD1). Characterization revealed that mutSOD1 skeletal myotubes display intrinsic phenotypic and functional differences compared to control myotubes generated from non-transgenic (NTg) littermates. Next, we analyzed whether ALS myotubes exert non-cell-autonomous toxicity to MNs. We report that conditioned media from mutSOD1 myotubes (mutSOD1-MCM), but not from control myotubes (NTg-MCM), induced robust death of primary MNs in mixed spinal cord cultures and compartmentalized microfluidic chambers. Our study further revealed that applying mutSOD1-MCM to the MN axonal side in microfluidic devices rapidly reduces mitochondrial axonal transport while increasing Ca2 + transients and reactive oxygen species (i.e., H2O2). These results indicate that soluble factor(s) released by mutSOD1 myotubes cause MN axonopathy that leads to lethal pathogenic changes.
| Ord. | Autor | Género | Institución - País |
|---|---|---|---|
| 1 | Martinez, Pablo | Hombre |
Universidad Nacional Andrés Bello - Chile
Facultad de Ciencias de la Vida - Chile |
| 2 | Silva, Monica | - |
Universidad de Chile - Chile
|
| 3 | Abarzua, Sebastian | - |
Universidad Nacional Andrés Bello - Chile
Facultad de Ciencias de la Vida - Chile |
| 4 | Tevy, Maria Florencia | - |
Universidad de Atacama - Chile
|
| 5 | Jaimovich, Enrique | - |
Universidad de Chile - Chile
|
| 6 | Constantine-Paton, Martha | - |
MIT - Estados Unidos
McGovern Institute - Estados Unidos |
| 7 | BUSTOS-FERNANDEZ, FERNANDO JOSE | Hombre |
Universidad Nacional Andrés Bello - Chile
Millennium Nucleus Neuroepigenet & Plast EpiNeuro - Chile Facultad de Ciencias de la Vida - Chile Millennium Nucleus of Neuroepigenetics and Plasticity (EpiNeuro) - Chile |
| 8 | Van Zundert, Brigitte | Mujer |
Universidad Nacional Andrés Bello - Chile
Millennium Nucleus Neuroepigenet & Plast EpiNeuro - Chile Univ Massachusetts Chan Med Sch UMMS - Estados Unidos Facultad de Ciencias de la Vida - Chile Millennium Nucleus of Neuroepigenetics and Plasticity (EpiNeuro) - Chile University of Massachusetts Chan Medical School - Estados Unidos |
| Fuente |
|---|
| National Institutes of Health |
| Universidad Andrés Bello |
| ANID-Fondecyt |
| ANID-CONICYT |
| Agencia Nacional de Investigacin y Desarrollo |
| ANID-MILENIO |
| BvZ |
| ANID-EXPLORADOR |
| Agradecimiento |
|---|
| Not applicable. |
| This work was supported by grants from: BvZ: ANID-FONDECYT (1181645 and 1221745, BvZ), ANID-MILENIO (NCN2023_32, BvZ and FJB), ANID-EXPLORADOR (13220203, BvZ), LifeArc (BvZ), FJB: UNAB DI-06-24/REG, PM: ANID-CONICYT (21151265, PM), SA: ANID-CONICYT (21151265, SA), MCP: National Institutes of Health Grants R01-EY014074 and R01-638 EY014420 (MCP), EJ: ANID-FONDECYT (1151293, EJ), UChile ICBM P2022, EJ. |