SummarySkeletal myocytes are metabolically active and susceptible to insulin resistance and are thus implicated in type 2 diabetes (T2D). This complex disease involves systemic metabolic changes, and their elucidation at the systems level requires genome-wide data and biological networks. Genome-scale metabolic models (GEMs) provide a network context for the integration of high-throughput data. We generated myocyte-specific RNA-sequencing data and investigated their correlation with proteome data. These data were then used to reconstruct a comprehensive myocyte GEM. Next, we performed a meta-analysis of six studies comparing muscle transcription in T2D versus healthy subjects. Transcriptional changes were mapped on the myocyte GEM, revealin...
Type 2 diabetes mellitus is a complex disorder associated with multiple genetic, epigenetic, develop...
Accumulating evidence implicates mitochondrial dysfunction-induced insulin resistance in skeletal mu...
Type 2 diabetes mellitus is a complex disorder associated with multiple genetic, epigenetic, develop...
Skeletal myocytes are metabolically active and susceptible to insulin resistance and are thus implic...
Type 2 diabetes (T2D) is a heterogeneous and complex disease that currently affects more than 350 mi...
Background: Skeletal muscle is one of the primary tissues involved in the development of type 2 diab...
Type 2 diabetes mellitus (T2DM) is a disorder characterized by both insulin resistance and impaired ...
AbstractThe development of insulin resistance and type 2 diabetes (T2D) involves a complex array of ...
Skeletal muscle is a key tissue site of insulin resistance in type 2 diabetes. Human myotubes are pr...
Summary: Skeletal muscle insulin resistance is a central defect in the pathogenesis of type 2 diabet...
Objective: Dysregulated muscle metabolism is a cardinal feature of human insulin resistance (IR) and...
The molecular mechanisms responsible for the pathophysiological traits of type 2 diabetes are incomp...
We analyzed the genes expressed (transcriptomes) and the proteins translated (proteomes) in muscle t...
Type 2 diabetes (T2D) is a complex metabolic disease characterized by multi-tissue insulin resistanc...
Type 2 diabetes mellitus is a highly prevalent human disease often preceded by a period of hyperinsu...
Type 2 diabetes mellitus is a complex disorder associated with multiple genetic, epigenetic, develop...
Accumulating evidence implicates mitochondrial dysfunction-induced insulin resistance in skeletal mu...
Type 2 diabetes mellitus is a complex disorder associated with multiple genetic, epigenetic, develop...
Skeletal myocytes are metabolically active and susceptible to insulin resistance and are thus implic...
Type 2 diabetes (T2D) is a heterogeneous and complex disease that currently affects more than 350 mi...
Background: Skeletal muscle is one of the primary tissues involved in the development of type 2 diab...
Type 2 diabetes mellitus (T2DM) is a disorder characterized by both insulin resistance and impaired ...
AbstractThe development of insulin resistance and type 2 diabetes (T2D) involves a complex array of ...
Skeletal muscle is a key tissue site of insulin resistance in type 2 diabetes. Human myotubes are pr...
Summary: Skeletal muscle insulin resistance is a central defect in the pathogenesis of type 2 diabet...
Objective: Dysregulated muscle metabolism is a cardinal feature of human insulin resistance (IR) and...
The molecular mechanisms responsible for the pathophysiological traits of type 2 diabetes are incomp...
We analyzed the genes expressed (transcriptomes) and the proteins translated (proteomes) in muscle t...
Type 2 diabetes (T2D) is a complex metabolic disease characterized by multi-tissue insulin resistanc...
Type 2 diabetes mellitus is a highly prevalent human disease often preceded by a period of hyperinsu...
Type 2 diabetes mellitus is a complex disorder associated with multiple genetic, epigenetic, develop...
Accumulating evidence implicates mitochondrial dysfunction-induced insulin resistance in skeletal mu...
Type 2 diabetes mellitus is a complex disorder associated with multiple genetic, epigenetic, develop...