Human Neuromuscular Junction on a Chip: Impact of Amniotic Fluid Stem Cell Extracellular Vesicles on Muscle Atrophy and NMJ Integrity.
Martina GattiKatarina Stoklund DittlauFrancesca BerettiLaura YedigaryanManuela ZavattiPietro CortelliAntonella SolaEmma BertucciLudo Van Den BoschMaurilio SampaolesiTullia MaraldiPublished in: International journal of molecular sciences (2023)
Neuromuscular junctions (NMJs) are specialized synapses, crucial for the communication between spinal motor neurons (MNs) and skeletal muscle. NMJs become vulnerable in degenerative diseases, such as muscle atrophy, where the crosstalk between the different cell populations fails, and the regenerative ability of the entire tissue is hampered. How skeletal muscle sends retrograde signals to MNs through NMJs represents an intriguing field of research, and the role of oxidative stress and its sources remain poorly understood. Recent works demonstrate the myofiber regeneration potential of stem cells, including amniotic fluid stem cells (AFSC), and secreted extracellular vesicles (EVs) as cell-free therapy. To study NMJ perturbations during muscle atrophy, we generated an MN/myotube co-culture system through Xona TM microfluidic devices, and muscle atrophy was induced in vitro by Dexamethasone (Dexa). After atrophy induction, we treated muscle and MN compartments with AFSC-derived EVs (AFSC-EVs) to investigate their regenerative and anti-oxidative potential in counteracting NMJ alterations. We found that the presence of EVs reduced morphological and functional in vitro defects induced by Dexa. Interestingly, oxidative stress, occurring in atrophic myotubes and thus involving neurites as well, was prevented by EV treatment. Here, we provided and validated a fluidically isolated system represented by microfluidic devices for studying human MN and myotube interactions in healthy and Dexa-induced atrophic conditions-allowing the isolation of subcellular compartments for region-specific analyses-and demonstrated the efficacy of AFSC-EVs in counteracting NMJ perturbations.
Keyphrases
- stem cells
- skeletal muscle
- cell therapy
- oxidative stress
- diabetic rats
- endothelial cells
- insulin resistance
- cell free
- high glucose
- single cell
- high throughput
- circulating tumor cells
- mesenchymal stem cells
- spinal cord
- low dose
- type diabetes
- umbilical cord
- risk assessment
- metabolic syndrome
- human health
- ischemia reperfusion injury
- spinal cord injury
- single molecule
- drinking water
- high dose
- bone marrow
- heat shock