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1-Deoxysphingolipids, Early Predictors of Type 2 Diabetes, Compromise the Functionality of Skeletal Myoblasts
Duyen Tran1, Stephen Myers2, Courtney McGowan2,3
1School of Pharmacy and Pharmacology, College of Health and Medicine, University of Tasmania, Hobart, TAS, Australia.
Abstract:
Metabolic dysfunction, dysregulated differentiation, and atrophy of skeletal muscle occur as part of a cluster of abnormalities associated with the development of Type 2 diabetes mellitus (T2DM). Recent interest has turned to the attention of the role of 1-deoxysphingolipids (1-DSL), atypical class of sphingolipids which are found significantly elevated in patients diagnosed with T2DM but also in the asymptomatic population who later develop T2DM. In vitro studies demonstrated that 1-DSL have cytotoxic properties and compromise the secretion of insulin from pancreatic beta cells. However, the role of 1-DSL on the functionality of skeletal muscle cells in the pathophysiology of T2DM still remains unclear. This study aimed to investigate whether 1-DSL are cytotoxic and disrupt the cellular processes of skeletal muscle precursors (myoblasts) and differentiated cells (myotubes) by performing a battery of in vitro assays including cell viability adenosine triphosphate assay, migration assay, myoblast fusion assay, glucose uptake assay, and immunocytochemistry. Our results demonstrated that 1-DSL significantly reduced the viability of myoblasts in a concentration and time-dependent manner, and induced apoptosis as well as cellular necrosis. Importantly, myoblasts were more sensitive to the cytotoxic effects induced by 1-DSL rather than by saturated fatty acids, such as palmitate, which are critical mediators of skeletal muscle dysfunction in T2DM. Additionally, 1-DSL significantly reduced the migration ability of myoblasts and the differentiation process of myoblasts into myotubes. 1-DSL also triggered autophagy in myoblasts and significantly reduced insulin-stimulated glucose uptake in myotubes. These findings demonstrate that 1-DSL directly compromise the functionality of skeletal muscle cells and suggest that increased levels of 1-DSL observed during the development of T2DM are likely to contribute to the pathophysiology of muscle dysfunction detected in this disease.
Insights
1-deoxysphingolipids (1-DSL) harm skeletal muscle cells, reducing viability and impairing differentiation. These findings link elevated 1-DSL levels to muscle dysfunction in type 2 diabetes mellitus (T2DM).
Area of Science:
- Biochemistry
- Cell Biology
- Endocrinology
Background:
- Type 2 diabetes mellitus (T2DM) involves skeletal muscle dysfunction, including metabolic abnormalities, impaired differentiation, and atrophy.
- 1-deoxysphingolipids (1-DSL), a class of atypical sphingolipids, are elevated in T2DM patients and individuals who later develop the disease.
- Previous studies indicated 1-DSL's cytotoxicity and negative impact on insulin secretion from pancreatic beta cells, but their role in skeletal muscle remained unclear.
Purpose of the Study:
- To investigate the cytotoxic effects of 1-DSL on skeletal muscle precursor cells (myoblasts) and differentiated cells (myotubes).
- To determine if 1-DSL disrupt cellular processes crucial for skeletal muscle function in the context of T2DM.
- To compare the toxicity of 1-DSL with saturated fatty acids like palmitate in skeletal muscle cells.
Main Methods:
- Cell viability assays (ATP assay) were performed on myoblasts and myotubes exposed to 1-DSL.
- Assays for apoptosis, necrosis, cell migration, and myoblast fusion were conducted.
- Glucose uptake in response to insulin was measured in myotubes.
- Immunocytochemistry was used to assess cellular changes.
Main Results:
- 1-DSL significantly reduced myoblast viability in a dose- and time-dependent manner, inducing apoptosis and necrosis.
- Myoblasts exhibited greater sensitivity to 1-DSL than to palmitate.
- 1-DSL impaired myoblast migration, inhibited myoblast differentiation into myotubes, and triggered autophagy.
- Insulin-stimulated glucose uptake was significantly reduced in myotubes treated with 1-DSL.
Conclusions:
- 1-deoxysphingolipids directly compromise skeletal muscle cell functionality, affecting viability, differentiation, and glucose metabolism.
- The elevated levels of 1-DSL in T2DM contribute to the observed skeletal muscle pathophysiology and dysfunction.
- Targeting 1-DSL metabolism or mitigating their effects could be a therapeutic strategy for T2DM-related muscle complications.
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