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Fail, A.

Publications and source records attributed to Fail, A..

2 recordsLinked to original sources

Axonopathy in Duchenne Muscular Dystrophy limits microdystrophin gene therapy efficacy

Duchenne muscular dystrophy (DMD) is classically defined as a primary myopathy, and current AAV-mediated microdystrophin gene therapies are shown to successfully preserve muscle integrity. However, their efficacy in recovering functional outcomes remains to improve. We hypothesized that this limitation stems from an unaccounted vulnerability within the peripheral nerve. Here, we demonstrate that the mdx mouse model exhibits a peripheral axonopathy independently of muscle necrosis. Using single-nucleus RNA sequencing and structural analyses, we have identified an active denervation program and a profound failure of neural repair pathways. Importantly, we revealed that the full-length dystrophin isoform Dp427c is expressed in the healthy peripheral nerve, intimately following the cytoskeletal organization and accumulating at regions of high biomechanical stress, including Schmidt-Lanterman incisures and Nodes of Ranvier. In its absence, nerves of mdx mice loss an essential scaffolding support, leading to localized structural collapse. Furthermore, we showed that muscle-restricted microdystrophin gene therapy rescues sarcolemmal integrity but failed to restore nerve-muscle connectivity or resolved neurotransmission defects. These findings fundamentally redefine DMD as an integrated motor unit pathology, thereby underscoring the absolute necessity of implementing combined therapeutic strategies that target both the muscle and the peripheral nervous system.

physiology↗

GDF5 as a Multimodal Protector of the Motor Unit in Amyotrophic Lateral Sclerosis

Amyotrophic lateral sclerosis is characterized by the progressive dismantling of the motor unit. While "dying back" hypothesis suggests that peripheral neuromuscular dysfunction precedes motor neuron loss, the molecular mechanisms limiting endogenous compensatory responses remain poorly understood. We longitudinally examined neuromuscular decline and GDF5-SMAD1/5/8 signaling in SOD1G93A mice. Our findings revealed a translational checkpoint linked to the lncRNA Myoparr that suppresses GDF5 production at symptom onset. To overcome this deficit, we delivered AAV9-GDF5 at the symptomatic stage. GDF5 supplementation restored SMAD signaling balance, shifting the motor unit from a pro-atrophic TGF-{beta}-SMAD2/3 toward a pro-myogenic SMAD1/5 profile. Treatment preserved muscle mass, reduced mitochondrial reactive oxygen species, and maintained neuromuscular junction integrity, including peri-synaptic glial support. GDF5 also promoted molecular recovery of spinal MNs by enhancing homeostatic marker expression. Together, these findings identify GDF5 as a multimodal stabilizer of the motor unit and highlight its potential as therapeutic target in combinatorial strategies aimed at coupling motor unit stabilization with central neuroprotective interventions.

physiology↗