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.

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.

Related Concept Videos

Diabetes Mellitus: Type 2 and Gestational01:22

Diabetes Mellitus: Type 2 and Gestational

Type 2 diabetes, characterized by insulin resistance, arises when the insulin receptors on cells lose responsiveness to insulin, diminishing the cell's capacity to take up glucose, resulting in elevated blood glucose levels. To receive a diagnosis of Type 2 diabetes, a series of blood glucose tests are necessary to assess whether the blood glucose falls within normal parameters. If the result is out of the normal range, a patient may be diagnosed as prediabetic or diabetic, depending on the...
3.1K
Diabetes Mellitus: Overview and Type I Subtype01:22

Diabetes Mellitus: Overview and Type I Subtype

Diabetes mellitus is a chronic metabolic disorder characterized by high blood glucose levels due to inadequate insulin production, insulin resistance, or both. The condition affects millions worldwide and can significantly impact their health and quality of life.
Type 1 diabetes is an autoimmune disease in which the immune system mistakenly attacks and destroys the insulin-producing beta cells in the pancreas. As a result, the body is unable to produce sufficient insulin, and individuals with...
3.5K
Pathophysiology of Diabetes01:20

Pathophysiology of Diabetes

Diabetes mellitus is a chronic metabolic disorder characterized by hyperglycemia. The four categories of diabetes are type 1 diabetes, type 2 diabetes, other specific types of diabetes, and gestational diabetes.
Type 1 diabetes is characterized by autoimmune-mediated destruction of pancreatic β cells, with environmental factors potentially triggering this process in genetically susceptible individuals. Despite many not having a family history, certain genes increase susceptibility,...
1.7K