Further evidence darifenacin preserves nerve-muscle connections in ALS mouse models
A new study from researchers supported at the Université de Montréal, led by Dr. Richard Robitaille, continued to explore whether supporting cells surrounding the neuromuscular junction (the connection between motor neurons and muscles) could help slow ALS progression. In an ALS mouse model, the researchers found that these support cells, called perisynaptic Schwann cells, become overactive and may lose their ability to help repair damaged nerve-muscle connections. Treatment with darifenacin, an already approved drug for overactive bladder symptoms, helped restore normal signaling in these models, preserving neuromuscular junctions, improving motor function, and reducing motor neuron loss.
Importantly, this evidence adds to the ongoing translational efforts led by Dr. Robitaille, whose team has already advanced darifenacin into clinical testing for ALS, including recruitment at Canadian sites.
A new link between key ALS proteins
A new preprint study by a supported researcher at the University of Waterloo, led by Dr. Dale Martin, identified ZDHHC17 as a potential link between several neurodegenerative diseases, including ALS. ZDHHC17 helps carry out a cellular process called S-acylation, which acts like an address label for proteins, helping them get to the right place within cells.
The researchers found that ZDHHC17 interacts with several ALS-related proteins, including TDP-43, VCP, C9ORF72, FUS, and SQSTM1, and showed that disruptions in this pathway can alter protein localization and cellular health. Experiments in cell and fruit fly models suggested that loss of ZDHHC17 function can lead to motor impairments and increased toxicity. While the findings are still early and have not yet been peer reviewed, they point to a potentially shared biological pathway across multiple neurodegenerative diseases and highlight S-acylation as a new area for future ALS research.
New zebrafish C9-ALS model to identify and validate potential ALS therapies
A new study, led by Dr. Alex Parker at the CHUM Research Center (CRCHUM), developed and characterized a zebrafish model lacking the C9orf72 gene, using CRISPR/Cas9 technology. The research team found that these fish developed features relevant to ALS, including movement impairments and changes in nerve and muscle function. They then used the model to test compounds that had previously shown promise in a simpler roundworm (C. elegans) ALS model, helping determine whether the findings could be reproduced across different species.
Importantly, the study demonstrates the value of using multiple ALS models to identify and validate potential therapies before moving to more advanced preclinical testing. By showing that promising compounds can have beneficial effects across species, this work helps strengthen confidence in potential drug candidates and supports efforts to accelerate the development of new ALS treatments.