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A Cell-Autonomous Signature of Dysregulated Protein Phosphorylation  Underlies Muscle Insulin Resistance in Type 2 Diabetes - ScienceDirect
A Cell-Autonomous Signature of Dysregulated Protein Phosphorylation Underlies Muscle Insulin Resistance in Type 2 Diabetes - ScienceDirect

N1‑methylnicotinamide ameliorates insulin resistance in skeletal muscle of  type 2 diabetic mice by activating the SIRT1/PGC‑1α signaling pathway
N1‑methylnicotinamide ameliorates insulin resistance in skeletal muscle of type 2 diabetic mice by activating the SIRT1/PGC‑1α signaling pathway

C2C12 cell model: its role in understanding of insulin resistance at the  molecular level and pharmaceutical development at the p
C2C12 cell model: its role in understanding of insulin resistance at the molecular level and pharmaceutical development at the p

C2C12 cell model: its role in understanding of insulin resistance at the  molecular level and pharmaceutical development at the preclinical stage -  Wong - 2020 - Journal of Pharmacy and Pharmacology - Wiley Online Library
C2C12 cell model: its role in understanding of insulin resistance at the molecular level and pharmaceutical development at the preclinical stage - Wong - 2020 - Journal of Pharmacy and Pharmacology - Wiley Online Library

Prolonged preoperative fasting induces postoperative insulin resistance by  ER-stress mediated Glut4 down-regulation in skeletal muscles
Prolonged preoperative fasting induces postoperative insulin resistance by ER-stress mediated Glut4 down-regulation in skeletal muscles

Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin  resistance | PNAS
Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin resistance | PNAS

Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin  resistance | PNAS
Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin resistance | PNAS

Insulin resistance in diabetes: The promise of using induced pluripotent  stem cell technology
Insulin resistance in diabetes: The promise of using induced pluripotent stem cell technology

Umbilical Cord-Mesenchymal Stem Cell-Conditioned Medium Improves Insulin  Resistance in C2C12 Cell
Umbilical Cord-Mesenchymal Stem Cell-Conditioned Medium Improves Insulin Resistance in C2C12 Cell

IJMS | Free Full-Text | Exploring the Role of Skeletal Muscle in Insulin  Resistance: Lessons from Cultured Cells to Animal Models | HTML
IJMS | Free Full-Text | Exploring the Role of Skeletal Muscle in Insulin Resistance: Lessons from Cultured Cells to Animal Models | HTML

IJMS | Free Full-Text | Diabetes-Induced Dysfunction of Mitochondria and  Stem Cells in Skeletal Muscle and the Nervous System | HTML
IJMS | Free Full-Text | Diabetes-Induced Dysfunction of Mitochondria and Stem Cells in Skeletal Muscle and the Nervous System | HTML

Trilobatin ameliorates insulin resistance through IRS-AKT-GLUT4 signaling  pathway in C2C12 myotubes and ob/ob mice | Chinese Medicine | Full Text
Trilobatin ameliorates insulin resistance through IRS-AKT-GLUT4 signaling pathway in C2C12 myotubes and ob/ob mice | Chinese Medicine | Full Text

Key Role for Ceramides in Mediating Insulin Resistance in Human Muscle Cells*  - Journal of Biological Chemistry
Key Role for Ceramides in Mediating Insulin Resistance in Human Muscle Cells* - Journal of Biological Chemistry

Frontiers | Myogenetic Oligodeoxynucleotide (myoDN) Recovers the  Differentiation of Skeletal Muscle Myoblasts Deteriorated by Diabetes  Mellitus
Frontiers | Myogenetic Oligodeoxynucleotide (myoDN) Recovers the Differentiation of Skeletal Muscle Myoblasts Deteriorated by Diabetes Mellitus

IJMS | Free Full-Text | Exploring the Role of Skeletal Muscle in Insulin  Resistance: Lessons from Cultured Cells to Animal Models | HTML
IJMS | Free Full-Text | Exploring the Role of Skeletal Muscle in Insulin Resistance: Lessons from Cultured Cells to Animal Models | HTML

Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin  resistance | PNAS
Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin resistance | PNAS

The effect of type 2 diabetes mellitus and obesity on muscle progenitor cell  function | Stem Cell Research & Therapy | Full Text
The effect of type 2 diabetes mellitus and obesity on muscle progenitor cell function | Stem Cell Research & Therapy | Full Text

Insulin resistance in diabetes: The promise of using induced pluripotent  stem cell technology
Insulin resistance in diabetes: The promise of using induced pluripotent stem cell technology

Trilobatin ameliorates insulin resistance through IRS-AKT-GLUT4 signaling  pathway in C2C12 myotubes and ob/ob mice | Chinese Medicine | Full Text
Trilobatin ameliorates insulin resistance through IRS-AKT-GLUT4 signaling pathway in C2C12 myotubes and ob/ob mice | Chinese Medicine | Full Text

JCI - Signaling defects associated with insulin resistance in nondiabetic  and diabetic individuals and modification by sex
JCI - Signaling defects associated with insulin resistance in nondiabetic and diabetic individuals and modification by sex

L6 Rat Myoblast Cell Line - Kerafast
L6 Rat Myoblast Cell Line - Kerafast

FOXO1 and GSK-3β Are Main Targets of Insulin-Mediated Myogenesis in C2C12  Muscle Cells | PLOS ONE
FOXO1 and GSK-3β Are Main Targets of Insulin-Mediated Myogenesis in C2C12 Muscle Cells | PLOS ONE

Frontiers | Extracellular ATP Increases Glucose Metabolism in Skeletal  Muscle Cells in a P2 Receptor Dependent Manner but Does Not Contribute to  Palmitate-Induced Insulin Resistance
Frontiers | Extracellular ATP Increases Glucose Metabolism in Skeletal Muscle Cells in a P2 Receptor Dependent Manner but Does Not Contribute to Palmitate-Induced Insulin Resistance

Myogenetic oligodeoxynucleotide (myoDN) recovers the differentiation of  skeletal muscle myoblasts deteriorated by diabetes mellitus | bioRxiv
Myogenetic oligodeoxynucleotide (myoDN) recovers the differentiation of skeletal muscle myoblasts deteriorated by diabetes mellitus | bioRxiv

Human Mesenchymal Stem Cell Derived Exosomes Alleviate Type 2 Diabetes  Mellitus by Reversing Peripheral Insulin Resistance and Relieving β-Cell  Destruction | ACS Nano
Human Mesenchymal Stem Cell Derived Exosomes Alleviate Type 2 Diabetes Mellitus by Reversing Peripheral Insulin Resistance and Relieving β-Cell Destruction | ACS Nano

PLIN2 inhibits insulin-induced glucose uptake in myoblasts through the  activation of the NLRP3 inflammasome
PLIN2 inhibits insulin-induced glucose uptake in myoblasts through the activation of the NLRP3 inflammasome

Enrichment of the exocytosis protein STX4 in skeletal muscle remediates  peripheral insulin resistance and alters mitochondrial dynamics via Drp1 |  Nature Communications
Enrichment of the exocytosis protein STX4 in skeletal muscle remediates peripheral insulin resistance and alters mitochondrial dynamics via Drp1 | Nature Communications

Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin  resistance | PNAS
Myotubes derived from human-induced pluripotent stem cells mirror in vivo insulin resistance | PNAS