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Weill, L.

Publications and source records attributed to Weill, L..

3 recordsLinked to original sources

Progressive muscle metabolic reprogramming in asymptomatic ALS gene mutation carriers

Amyotrophic lateral sclerosis (ALS) is a rapidly fatal neurodegenerative disorder characterized by motor neuron loss leading to extensive paralysis. There is emerging evidence that the disease involves a prolonged presymptomatic period during which motor function is preserved. Understanding the molecular mechanisms involved is key as the presymptomatic phase represents a critical window of opportunity for early intervention. Using RNA sequencing, we investigated changes in gene expression patterns in the skeletal muscle of ten asymptomatic carriers of ALS mutations (8 C9ORF72 expansion carriers and 2 SOD1 mutation carriers). We found that specific modifications of gene expression profiles are present in skeletal muscle before asymptomatic ALS gene carriers exhibit biomarker changes predictive of phenoconversion. We identified insulin signaling, AMPK signaling, and thermogenesis pathways, together with the TCA cycle as the main contributors to the dysregulated muscle transcriptome. Our data suggest that this metabolic reprogramming of skeletal muscle develops progressively during the transition to phenoconversion, characterized by a gradual increase in the expression of SREBF1 which encodes SREPB1, the key transcriptional regulator of lipid synthesis, in parallel with the progressive activation of AMPK and insulin signaling pathways. Our findings are consistent with a progressive enhancement in fatty acid metabolism and oxidative capacity in skeletal muscle, followed by a decline in oxidative phosphorylation efficiency as phenoconversion approaches. Evidence of muscle metabolic reprogramming in ALS long before motor onset identifies the dysregulation of muscle energy homeostasis as a critical early event in ALS pathogenesis. One sentence summarySkeletal muscle from individuals at elevated genetic risk for ALS/FTD undergoes progressive metabolic reprogramming far before disease onset.

neuroscience↗

Combining SMN2 splicing modifiers with HDAC6 inhibition greatly improves muscle function and survival in Spinal Muscular Atrophy

Spinal muscular atrophy (SMA) is a rare, progressive and severe neuromuscular disease. It is mostly caused by mutations in the SMN gene, which lead to the death of spinal cord motor neurons. In the absence of treatment, more than half of affected children die before the age of two. Recently, groundbreaking gene therapies were developed, allowing children to survive. However, a new clinical presentation of the disease has emerged in treated patients, characterized by ongoing functional deficits and a disability mainly due to persistent muscle atrophy. Over the last years, treatments of various animal models of neuromuscular disorders have shown the ability of inhibitors of the non-conventional histone deacetylase 6 (HDAC6) to reduce inflammation, fibrosis and muscle atrophy, and to ameliorate acetylcholine receptor distribution at the neuromuscular junction, microtubule network and mitochondrial transport in axons, indicating potential interest for the treatment of neuromuscular disorders. The present study was designed to properly characterize the effect of HDAC6 inhibition on muscle cells proliferation and differentiation and to evaluate in vivo if HDAC6 inhibition combined with the new standard of care treatments of SMA could ameliorate skeletal muscle and general status of a SMA mouse model. Here, we report that HDAC6 and tubulin acetylation controls myotube formation and maturation in vitro. In particular, HDAC6 inhibition increases the size of SMA patients-derived muscle primary myotubes. In vivo, when combined with ASOs inducing exon 7 inclusion in SMN2 RNA in motoneurons, HDAC6 systemic inhibition strongly improved muscle strength, mass, function, and longevity of the Smn{Delta}7/{Delta}7; hSMN2+/- mouse model of SMA. These findings provide evidence that in muscle cells, HDAC6 is the only tubulin deacetylase and that selective inhibition of HDAC6 improves myogenic progression and that HDAC6 inhibitors are good candidates to ameliorate persisting symptoms of SMA patients treated with the new standard of care.

physiology↗

Frataxin deficiency in proprioceptive neurons is causal to inflammatory and glial responses in dorsal root ganglia

Friedreich ataxia (FA), the most common recessive hereditary ataxia, is an early-onset neurodegenerative disease characterized by pathological changes occurring first in the peripheral dorsal root ganglia (DRG), with loss of the large sensory proprioceptive neurons, leading to ganglionopathy and proprioceptive deficits. FA is caused by a mutation in frataxin gene (Fxn), leading to reduced expression of frataxin protein (FXN), an essential ubiquitous mitochondrial protein. Most research has focused on the pathophysiological involvement of proprioceptors. However, in recent years, neuroinflammation is increasingly recognized as an integral and critical contributor in FA pathogenesis. Furthermore, it has also recently been shown a primary reactivity of satellite glial cells (SGCs; glia tightly enwrapping proprioceptor cell bodies), suggesting a role of inflammation and SGC responses in the destruction of proprioceptors in FA patients DRGs. It remains unclear to what extent the increase in DRG macrophage response and/or SGC reactivity may contribute to FA phenotype. Therefore, it is important to fully study and understand the mechanism of proprioceptor-macrophages-SGC interactions and their regulations. Exploring relationship between these three cell types has profound implications for breaking through the limitation of treatment of FA. Here we asked whether FXN deficiency selectively in DRG proprioceptive neurons is sufficient to cause inflammatory and glial responses found in patients DRG. We used RNA profiling, bioinformatics signaling network and pathway analysis, combined with immunohistochemistry and behavioral experiments to reveal some genes, signaling pathways in macrophages and SGCs that may represent potential biomarkers of the disease. Our study revealed that proprioceptor FXN deficiency causes major changes in inflammatory macrophage and SGC gene transcription as well as macrophage and SGC number, highlighting molecular and cellular pathways that were sequentially altered, thus representing temporal signatures of FA ganglionopathy progression.

neuroscience↗