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1.
J Mol Cell Biol ; 13(6): 445-454, 2021 09 11.
Article in English | MEDLINE | ID: mdl-33760044

ABSTRACT

During embryonic heart development, the progenitor cells in the epicardium would migrate and differentiate into noncardiomyocytes in myocardium and affect the integrity of ventricular wall, but the underlying mechanism has not been well studied. We have found that myocardium geranylgeranyl diphosphate synthase (Ggpps), a metabolic enzyme for cholesterol biosynthesis, is critical for cardiac cytoarchitecture remodelling during heart development. Here, we further reveal that epicardial Ggpps could also regulate ventricular wall architecture integrity. Epicardium-specific deletion of Ggpps before embryonic day 10.5 (E10.5) is embryonic lethal, whereas after E13.5 is survival but with defects in the epicardium and ventricular wall structure. Ggpps deficiency in the epicardium enhances the proliferation of epicardial cells and disrupts cell‒cell contact, which makes epicardial cells easier to invade into ventricular wall. Thus, the fibroblast proliferation and coronary formation in myocardium were found enhanced that might disturb the coronary vasculature remodelling and ventricular wall integrity. These processes might be associated with the activation of YAP signalling, whose nuclear distribution is blocked by Ggpps deletion. In conclusion, our findings reveal a potential link between the cholesterol metabolism and heart epicardium and myocardium development in mammals, which might provide a new view of the cause for congenital heart diseases and potential therapeutic target in pathological cardiac conditions.


Subject(s)
Cholesterol/metabolism , Farnesyltranstransferase/metabolism , Pericardium/metabolism , Animals , Cells, Cultured , Embryonic Development/physiology , Female , Heart/physiology , Male , Mice , Mice, Knockout , Myocardium/metabolism , Pregnancy , Signal Transduction/physiology
2.
FASEB J ; 32(8): 4370-4379, 2018 08.
Article in English | MEDLINE | ID: mdl-29543533

ABSTRACT

Postprandial insulin desensitization plays a critical role in maintaining whole-body glucose homeostasis by avoiding the excessive absorption of blood glucose; however, the detailed mechanisms that underlie how the major player, skeletal muscle, desensitizes insulin action remain to be elucidated. Herein, we report that early growth response gene-1 ( Egr-1) is activated by insulin in skeletal muscle and provides feedback inhibition that regulates insulin sensitivity after a meal. The inhibition of the transcriptional activity of Egr-1 enhanced the phosphorylation of the insulin receptor (InsR) and Akt, thus increasing glucose uptake in L6 myotubes after insulin stimulation, whereas overexpression of Egr-1 decreased insulin sensitivity. Furthermore, deletion of Egr-1 in the skeletal muscle improved systemic insulin sensitivity and glucose tolerance, which resulted in lower blood glucose levels after refeeding. Mechanistic analysis demonstrated that EGR-1 inhibited InsR phosphorylation and glucose uptake in skeletal muscle by binding to the proximal promoter region of protein tyrosine phosphatase-1B (PTP1B) and directly activating transcription. PTP1B knockdown largely restored insulin sensitivity and enhanced glucose uptake, even under conditions of EGR-1 overexpression. Our results indicate that EGR-1/PTP1B signaling negatively regulates postprandial insulin sensitivity and suggest a potential therapeutic target for the prevention and treatment of excessive glucose absorption.-Wu, J., Tao, W.-W., Chong, D.-Y., Lai, S.-S., Wang, C., Liu, Q., Zhang, T.-Y., Xue, B., Li, C.-J. Early growth response-1 negative feedback regulates skeletal muscle postprandial insulin sensitivity via activating Ptp1b transcription.


Subject(s)
Early Growth Response Protein 1/metabolism , Insulin/metabolism , Muscle, Skeletal/metabolism , Postprandial Period/physiology , Protein Tyrosine Phosphatase, Non-Receptor Type 1/metabolism , Animals , Blood Glucose , Cells, Cultured , Glucose/metabolism , Homeostasis/physiology , Insulin Resistance/physiology , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Muscle Fibers, Skeletal/metabolism , Phosphorylation/physiology , Rats , Receptor, Insulin/metabolism , Signal Transduction/physiology , Transcription, Genetic/physiology
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