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Biology subjects

Fillion, M.

Publications and source records attributed to Fillion, M..

2 recordsLinked to original sources

Improvement of Spontaneous Locomotor Activity in a Murine Model of Duchenne Muscular Dystrophy by N-Acetylglucosamine Alone and in Combination with Prednisolone

N-acetylglucosamine (GlcNAc) is an endogenous compound whose intracellular concentration is closely associated with the biosynthesis of acetyllactosamine-rich N-linked oligosaccharides. These oligosaccharides interact with mammalian lectin galectin-3, mediating cell surface receptor dynamics as well as cell-to-cell and cell-to-extracellular matrix interactions. Our previous and recent studies suggest that GlcNAc, in conjunction with galectin-3, augments muscle regeneration in vitro. We have also demonstrated that intraperitoneal GlcNAc administration improves muscle strength in a murine model of Duchenne muscular dystrophy (DMD) (mdx mice). Here, we show that oral administration of GlcNAc significantly improves the spontaneous locomotor activity of mdx mice. Administering GlcNAc at concentrations of 0.6, 1.2, 1.8, and 2.4 g/kg body weight per day for 35 days significantly improved nocturnal spontaneous locomotor activity at all those doses, with the 1.2 g/kg body weight dose reducing damages of extensor digitorum longus muscle by nearly 50%. While consecutive forced exercises, including horizontal and downhill treadmill running, reduced GlcNAc-promoted locomotor activity, treatment with 0.6 and 1.2 g/kg body weight treatment results in increased spontaneous locomotor activity. These results suggest that GlcNAc enhances overall muscle health, likely through promoting muscle repair/regeneration rather than preventing damage formation. Notably, co-administration of GlcNAc with prednisolone, a corticosteroid commonly used in DMD patients, further enhanced spontaneous locomotor improvement in mdx mice compared to prednisolone alone. These findings suggest that GlcNAc has the potential to improve the clinical status of DMD patients, either as a monotherapy or in combination with corticosteroids.

physiology↗

N-Acetylglucosamine Facilitates Coordinated Myoblast Flow, Forming the Foundation for Efficient Myogenesis

Skeletal muscle comprises 30-40% of a mammals body mass, maintaining its integrity through efficient muscle fiber regeneration, which involves myoblast differentiation into myotubes. Previously, we reported that N-acetylglucosamine (GlcNAc) promotes myogenesis in C2C12 cells, although the underlying mechanisms were unclear. UDP-GlcNAc, the activated form of GlcNAc, is critical for the biosynthesis of highly branched (N-acetyllactosamine-rich) N-linked oligosaccharides, which are recognized by galectin-3 (Gal-3), facilitating dynamic cell-cell and cell-matrix interactions. In this study, we used primary myoblasts from wild-type and Gal-3 null (Gal-3KO) mice, observing myotube formation through long-term live-cell imaging and single-cell tracking. We found that GlcNAc enhances myoblast fusion in a dose-dependent manner, and the addition of Gal-3 with GlcNAc leads to the formation of larger myotubes. Gal-3KO myoblasts exhibited a reduced capacity for myotube formation, a deficiency that was rectified by supplementing with GlcNAc and Gal-3. Our results highlight the critical role of Gal-3 interaction with oligosaccharides whose synthesis was promoted by GlcNAc in facilitating myotube formation. Single-cell tracking revealed that GlcNAc and Gal-3 increase myoblast motility, creating a faster-coordinated cell flow--a directed movement of myoblasts, along which myotubes form through cell fusion. Interestingly, myoblasts contributing to myotube formation were pre-positioned along the eventual shape of the myotubes before the establishment of the coordinated flow. These myoblasts moved along the flow, paused, and even moved against the flow, suggesting that both flow and initial positioning play roles in aligning myoblasts into the shape of a myotube. Overall, our findings demonstrate that GlcNAc, in conjunction with Gal-3, enhances myotube formation by fostering an environment conducive to myoblast positioning, establishing coordinated flow, and facilitating fusion. This suggests potential therapeutic applications of GlcNAc in muscle repair and muscle disorders.

cell biology↗