Choline kinase inhibitors EB-3D and EB-3P interferes with lipid homeostasis in HepG2 cells
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Sola Leyva, Alberto; López Cara, Luisa Carlota; Ríos Guadix, Antonio; Ríos Marco, Pablo; Marco De La Calle, Carmen; Carrasco Jiménez, María PazEditorial
Springer Nature
Date
2019-03-25Referencia bibliográfica
Sola-Leyva, A., López-Cara, L. C., Ríos-Marco, P., Ríos, A., Marco, C., & Carrasco-Jiménez, M. P. (2019). Choline kinase inhibitors EB-3D and EB-3P interferes with lipid homeostasis in HepG2 cells. Scientific reports, 9(1), 1-13.
Sponsorship
This work was aided by the Andalusian Regional Government (P11-CVI-7859). The inhibitors were developed under the Cei-Biotic Project CEI2013-MP-1 (University of Granada).Abstract
A full understanding of the molecular mechanism of action of choline kinase α (ChoKα) inhibitors at
the cell level is essential for developing therapeutic and preventive approaches for cancer. The aim
of the present study was to evaluate the effects of the ChoKα inhibitors EB-3D and EB-3P on lipid
metabolism in HepG2 cells. We used [methyl-14C]choline, [1,2-14C]acetic acid and [2-3H]glycerol as
exogenous precursors of the corresponding phospholipids and neutral lipids. [Methyl-14C]choline was
also used to determine choline uptake. Protein levels were determined by Western blot. Ultrastructural
alterations were investigated by transmission electron microscopy. In this work, we demonstrate that
EB-3D and EB-3P interfere with phosphatidylcholine biosynthesis via both CDP-choline pathway and
choline uptake by the cell. Moreover, the synthesis of both diacylglycerols and triacylglycerols was
affected by cell exposure to both inhibitors. These effects were accompanied by a substantial decrease
in cholesterol biosynthesis, as well as alterations in the expression of proteins related to cholesterol
homeostasis. We also found that EB-3D and EB-3P lowered ChoKα protein levels. All these effects could
be explained by the modulation of the AMP-activated protein kinase signalling pathway. We show that
both inhibitors cause mitochondrial alteration and an endoplasmic reticulum stress response. EB-3D
and EB-3P exert effects on ChoKα expression, AMPK activation, apoptosis, endoplasmic reticulum
stress and lipid metabolism. Taken together, results show that EB-3D and EB-3P have potential anticancer
activity through the deregulation of lipid metabolism.