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1.
Nat Commun ; 14(1): 2748, 2023 05 12.
Article in English | MEDLINE | ID: mdl-37173315

ABSTRACT

Phosphatidylcholine transfer protein (PC-TP; synonym StarD2) is a soluble lipid-binding protein that transports phosphatidylcholine (PC) between cellular membranes. To better understand the protective metabolic effects associated with hepatic PC-TP, we generated a hepatocyte-specific PC-TP knockdown (L-Pctp-/-) in male mice, which gains less weight and accumulates less liver fat compared to wild-type mice when challenged with a high-fat diet. Hepatic deletion of PC-TP also reduced adipose tissue mass and decreases levels of triglycerides and phospholipids in skeletal muscle, liver and plasma. Gene expression analysis suggest that the observed metabolic changes are related to transcriptional activity of peroxisome proliferative activating receptor (PPAR) family members. An in-cell protein complementation screen between lipid transfer proteins and PPARs uncovered a direct interaction between PC-TP and PPARδ that was not observed for other PPARs. We confirmed the PC-TP- PPARδ interaction in Huh7 hepatocytes, where it was found to repress PPARδ-mediated transactivation. Mutations of PC-TP residues implicated in PC binding and transfer reduce the PC-TP-PPARδ interaction and relieve PC-TP-mediated PPARδ repression. Reduction of exogenously supplied methionine and choline reduces the interaction while serum starvation enhances the interaction in cultured hepatocytes. Together our data points to a ligand sensitive PC-TP- PPARδ interaction that suppresses PPAR activity.


Subject(s)
Fatty Liver , PPAR delta , Male , Animals , Mice , PPAR delta/genetics , Phosphatidylcholines/metabolism , Ligands , Fatty Liver/genetics , Fatty Liver/prevention & control , Fatty Liver/metabolism , Liver/metabolism , Diet
2.
Arterioscler Thromb Vasc Biol ; 37(12): 2271-2279, 2017 12.
Article in English | MEDLINE | ID: mdl-29097365

ABSTRACT

OBJECTIVE: Apheresis platelets for transfusion treatment are currently stored at room temperature because after refrigeration platelets are rapidly cleared on transfusion. In this study, the role of von Willebrand factor (VWF) in the clearance of refrigerated platelets is addressed. APPROACH AND RESULTS: Human and murine platelets were refrigerated in gas-permeable bags at 4°C for 24 hours. VWF binding, platelet signaling events, and platelet post-transfusion recovery and survival were measured. After refrigeration, the binding of plasma VWF to platelets was drastically increased, confirming earlier studies. The binding was blocked by peptide OS1 that bound specifically to platelet glycoprotein (GP)Ibα and was absent in VWF-/- plasma. Although surface expression of GPIbα was reduced after refrigeration, refrigeration-induced VWF binding under physiological shear induced unfolding of the GPIbα mechanosensory domain on the platelet, as evidenced by increased exposure of a linear epitope therein. Refrigeration and shear treatment also induced small elevation of intracellular Ca2+, phosphatidylserine exposure, and desialylation of platelets, which were absent in VWF-/- platelets or inhibited by OS1, which is a monomeric 11-residue peptide (CTERMALHNLC). Furthermore, refrigerated VWF-/- platelets displayed increased post-transfusion recovery and survival than wild-type ones. Similarly, adding OS1 to transgenic murine platelets expressing only human GPIbα during refrigeration improved their post-transfusion recovery and survival. CONCLUSIONS: Refrigeration-induced binding of VWF to platelets facilitates their rapid clearance by inducing GPIbα-mediated signaling. Our results suggest that inhibition of the VWF-GPIbα interaction may be a potential strategy to enable refrigeration of platelets for transfusion treatment.


Subject(s)
Blood Platelets/metabolism , Blood Preservation/methods , Cold Temperature , Platelet Transfusion , Refrigeration , von Willebrand Factor/metabolism , Animals , Binding, Competitive , Blood Platelets/drug effects , Genotype , Humans , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Peptides/metabolism , Peptides/pharmacology , Phenotype , Platelet Activation , Platelet Glycoprotein GPIb-IX Complex/chemistry , Platelet Glycoprotein GPIb-IX Complex/genetics , Platelet Glycoprotein GPIb-IX Complex/metabolism , Protein Binding , Protein Conformation , Protein Unfolding , Signal Transduction , Structure-Activity Relationship , Time Factors , von Willebrand Factor/chemistry , von Willebrand Factor/genetics
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