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Human embryonic stem cell-derived cardiomyocytes as an in vitro model to study cardiac insulin resistance
Authors:Ilvy M.E. Geraets  Dipanjan Chanda  Florence H.J. van Tienen  Arthur van den Wijngaard  Rick Kamps  Dietbert Neumann  Yilin Liu  Jan F.C. Glatz  Joost J.F.P. Luiken  Miranda Nabben
Affiliation:1. Department of Genetics and Cell Biology, School for Cardiovascular Diseases (CARIM), Maastricht University, Maastricht, The Netherlands
Abstract:Patients with type 2 diabetes (T2D) and/or insulin resistance (IR) have an increased risk for the development of heart failure (HF). Evidence indicates that this increased risk is linked to an altered cardiac substrate preference of the insulin resistant heart, which shifts from a balanced utilization of glucose and long-chain fatty acids (FAs) towards an almost complete reliance on FAs as main fuel source. This shift leads to a loss of endosomal proton pump activity and increased cardiac fat accumulation, which eventually triggers cardiac dysfunction. In this review, we describe the advantages and disadvantages of currently used in vitro models to study the underlying mechanism of IR-induced HF and provide insight into a human in vitro model: human embryonic stem cell-derived cardiomyocytes (hESC-CMs). Using functional metabolic assays we demonstrate that, similar to rodent studies, hESC-CMs subjected to 16 h of high palmitate (HP) treatment develop the main features of IR, i.e., decreased insulin-stimulated glucose and FA uptake, as well as loss of endosomal acidification and insulin signaling. Taken together, these data propose that HP-treated hESC-CMs are a promising in vitro model of lipid overload-induced IR for further research into the underlying mechanism of cardiac IR and for identifying new pharmacological agents and therapeutic strategies. This article is part of a Special issue entitled Cardiac adaptations to obesity, diabetes and insulin resistance, edited by Professors Jan F.C. Glatz, Jason R.B. Dyck and Christine Des Rosiers.
Keywords:T2D  type 2 diabetes  IR  insulin resistance  HF  heart failure  FA  fatty acid  hESC-CMs  human embryonic stem cell-derived cardiomyocytes  HP  high palmitate  GLUT  glucose transporter  v-ATPase  hSC-CMs  human stem cell-derived cardiomyocytes  hiPSC-CMs  human induced pluripotent stem cell-derived cardiomyocytes  hiPSCs  human induced pluripotent stem cells  hESCs  human embryonic stem cells  AP  action potential  LV  left ventricle  Human embryonic stem cells  Insulin resistance  Glucose and fatty acid uptake  Cardiomyocytes
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