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1.
EMBO Mol Med ; 15(9): e16858, 2023 09 11.
Article in English | MEDLINE | ID: mdl-37490001

ABSTRACT

Hyperreactive platelets are commonly observed in diabetic patients indicating a potential link between glucose homeostasis and platelet reactivity. This raises the possibility that platelets may play a role in the regulation of metabolism. Pancreatic ß cells are the central regulators of systemic glucose homeostasis. Here, we show that factor(s) derived from ß cells stimulate platelet activity and platelets selectively localize to the vascular endothelium of pancreatic islets. Both depletion of platelets and ablation of major platelet adhesion or activation pathways consistently resulted in impaired glucose tolerance and decreased circulating insulin levels. Furthermore, we found platelet-derived lipid classes to promote insulin secretion and identified 20-Hydroxyeicosatetraenoic acid (20-HETE) as the main factor promoting ß cells function. Finally, we demonstrate that the levels of platelet-derived 20-HETE decline with age and that this parallels with reduced impact of platelets on ß cell function. Our findings identify an unexpected function of platelets in the regulation of insulin secretion and glucose metabolism, which promotes metabolic fitness in young individuals.


Subject(s)
Insulin-Secreting Cells , Humans , Insulin Secretion , Insulin/metabolism , Blood Platelets , Glucose/metabolism
2.
Life Sci Alliance ; 4(8)2021 08.
Article in English | MEDLINE | ID: mdl-34145024

ABSTRACT

Members of the protein kinase D (PKD) family (PKD1, 2, and 3) integrate hormonal and nutritional inputs to regulate complex cellular metabolism. Despite the fact that a number of functions have been annotated to particular PKDs, their molecular targets are relatively poorly explored. PKD3 promotes insulin sensitivity and suppresses lipogenesis in the liver of animals fed a high-fat diet. However, its substrates are largely unknown. Here we applied proteomic approaches to determine PKD3 targets. We identified more than 300 putative targets of PKD3. Furthermore, biochemical analysis revealed that PKD3 regulates cAMP-dependent PKA activity, a master regulator of the hepatic response to glucagon and fasting. PKA regulates glucose, lipid, and amino acid metabolism in the liver, by targeting key enzymes in the respective processes. Among them the PKA targets phenylalanine hydroxylase (PAH) catalyzes the conversion of phenylalanine to tyrosine. Consistently, we showed that PKD3 is activated by glucagon and promotes glucose and tyrosine levels in hepatocytes. Therefore, our data indicate that PKD3 might play a role in the hepatic response to glucagon.


Subject(s)
Cyclic AMP-Dependent Protein Kinases/metabolism , Glucagon/pharmacology , Hepatocytes/cytology , Protein Kinase C/metabolism , Proteomics/methods , Animals , Cells, Cultured , Fasting , Glucose/metabolism , Hepatocytes/drug effects , Hepatocytes/metabolism , Mice , Phenylalanine Hydroxylase/metabolism , Phosphorylation , Primary Cell Culture , Protein Interaction Maps , Tyrosine/metabolism
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