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Ljubicic, V.

Publications and source records attributed to Ljubicic, V..

2 recordsLinked to original sources

Arginine methyltransferase signalling is hyperactive in conditions of neuromuscular junction instability and muscle atrophy

Background: The neuromuscular junction (NMJ) is the site of communication between myofibers and a-motor neurons. Cellular and molecular mechanisms that determine, maintain, and remodel the neuromuscular synapse are poorly understood. Coactivator-associated arginine methyltransferase 1 (CARM1) post-translationally modifies target proteins by methylating arginine residues and has emerged as a key determinant of skeletal muscle biology. Methylarginine signalling is required for the maintenance and repair of the NMJ, but the direct role of CARM1 on the NMJ in health and disease remains unexplored, particularly in humans. Methods: We generated Carm1 skeletal muscle-specific knockout-out (mKO) mice to gain a basic understanding for the role of the enzyme in NMJ biology under homeostatic and denervated conditions. Additionally, we investigated CARM1 activity in severe mouse models of neuromuscular disorders (NMDs) including D2.mdx and Smn2B/- mice, which replicate Duchenne's muscular dystrophy (DMD) and spinal muscular atrophy (SMA), respectively, and exhibit chronic remodelling of the NMJ. Lastly, to evaluate if methylarginine signalling is implicated during NMJ instability in human skeletal muscle, we obtained samples from healthy volunteers before and after 14 days of single leg immobilization as well as from patients with myotonic dystrophy type 1. Results: Our results demonstrated that Carm1 mRNA expression and activity are elevated (P<0.05) in NMJ-enriched regions of healthy murine skeletal muscle. Carm1 muscle-specific deletion reduced NMJ compactness (-9.3%; P<0.05), increased fragmentation (+33%; P<0.05), and disrupted the expression of synapse-specific transcripts basally and following sciatic nerve transection. In skeletal muscle from pre-clinical models of NMDs, we observed a compensatory upregulation in CARM1-dependent arginine methylation as evident by +54% and +71 increases (P<0.05) in asymmetric dimethylarginine (ADMA)-marked CARM1 substrates in DMD and SMA mice, respectively. Similarly, muscle CARM1 was hyperactive with increased NMJ instability during neuromuscular disuse (+22%; P<0.05), and disease (+30%; P<0.05), in humans. In a cohort of muscular dystrophy patients and healthy volunteers, elevated CARM1 signalling was negatively correlated with clinical metrics of skeletal muscle health including grip strength (r = -0.583; P<0.05) as well as positively correlated with mRNA expression of NMJ machinery such as CHRNA1 (r = 0.578; P<0.05). Conclusion: In summary, we highlight that muscle-specific CARM1 is required for maintaining NMJ morphology and transcriptional regulation. Insults to NMJ stability during muscle disuse or in myopathic conditions were associated with enhanced CARM1-mediated methylarginine signalling in mice and humans. Collectively, our findings demonstrate CARM1 as a key mediator of NMJ biology and plasticity in health and disease.

physiology↗

Acute AMPK activation does not adequately stimulate insulin signaling in skeletal muscle models of Myotonic Dystrophy Type 1

Myotonic Dystrophy Type 1 (DM1) is a multisystemic neuromuscular disorder characterized by skeletal muscle weakness, muscle atrophy, myotonia, cognitive impairments, gastrointestinal complications, and insulin resistance. While insulin resistance is well characterized in type 2 diabetes, its pathomechanism in DM1 remains unclear. Our study aims to elucidate the pathomechanism of insulin resistance in DM1 and how the pathway responds to AMPK stimulation. Proteomic analysis from sedentary wildtype and sedentary HSA-LR mice, a common DM1 mouse model, revealed downregulation of the AMPK-PGC-1 axis. Analysis of sedentary HSA-LR mice and exercised HSA-LR mice revealed activation of the AMPK-PGC-1 axis in exercised animals. To investigate this pathway, we treated WT and HSA-LR mice with the AMPK activator AICAR to examine the impact of AMPK stimulation on insulin signaling in DM1. This revealed impaired responses in the insulin pathway activation in the HSA-LR mice. Next, we examined whether these differences extended to a human model by treating control and DM1 myotubes with insulin and/or AICAR. In DM1 myotubes, both treatments produced dampened responses of key insulin signaling intermediates compared to controls. Taken together, these results suggest impaired activation of insulin signaling pathways in DM1 models and confirm the presence of insulin resistance with an impaired response to acute AMPK stimulation.

molecular biology↗