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The triterpene echinocystic acid and its 3-O-glucoside derivative are revealed as potent and selective glucocorticoid receptor agonists

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Συγγραφέας
Georgatza D., Gorgogietas V.A., Kylindri P., Charalambous M.C., Papadopoulou K.K., Hayes J.M., Psarra A.-M.G.
Ημερομηνία
2016
Γλώσσα
en
DOI
10.1016/j.biocel.2016.08.028
Λέξη-κλειδί
3 o glucoside derivative
dexamethasone
echinocystic acid
glucocorticoid receptor
glucosamine derivative
immunoglobulin enhancer binding protein
triterpene
unclassified drug
echinocystic acid
glucocorticoid receptor
glucoside
immunoglobulin enhancer binding protein
oleanolic acid
animal cell
apoptosis
Article
cell nucleus
controlled study
COS 7 cell line
gene
gene expression
HeLa cell line
human
human cell
mitochondrion
molecular docking
nonhuman
phosphoenolopyruvate carboxykinase target gene
proton transport
transactivation
agonists
analogs and derivatives
animal
cell line
chemistry
drug effects
genetics
metabolism
nucleocytoplasmic transport
protein conformation
signal transduction
transcription initiation
Active Transport, Cell Nucleus
Animals
Cell Line
Cell Nucleus
Glucosides
Humans
Molecular Docking Simulation
NF-kappa B
Oleanolic Acid
Protein Conformation
Receptors, Glucocorticoid
Signal Transduction
Transcriptional Activation
Elsevier Ltd
Εμφάνιση Μεταδεδομένων
Επιτομή
Glucocorticoids are steroid hormones widely used to control many inflammatory conditions. These effects are primarily attributed to glucocorticoid receptor transrepressional activities but with concomitant receptor transactivation associated with considerable side effects. Accordingly, there is an immediate need for selective glucocorticoid receptor agonists able to dissociate transactivation from transrepression. Triterpenoids have structural similarities with glucocorticoids and exhibit anti-inflammatory and apoptotic activities via mechanisms that are not well-defined. In this study, we examined whether echinocystic acid and its 3-O-glucoside derivative act, at least in part, through the regulation of glucocorticoid receptor and whether they can constitute selective receptor activators. We showed that echinocystic acid and its glucoside induced glucocorticoid receptor nuclear translocation by 75% and 55%. They suppressed the nuclear factor-kappa beta transcriptional activity by 20% and 70%, respectively, whereas they have no glucocorticoid receptor transactivation capability and stimulatory effect on the expression of the phosphoenolopyruvate carboxykinase target gene in HeLa cells. Interestingly, their suppressive effect is diminished in glucocorticoid receptor low level COS-7 cells, verifying the receptor involvement in this process. Induced fit docking calculations predicted favorable binding in the ligand binding domain and structural characteristics which can be considered consistent with the experimental observations. Further, glucocorticoids exert apoptotic activities; we have demonstrated here that the echinocystic acids in combination with the synthetic glucocorticoid, dexamethasone, induce apoptosis. Taken together, our results indicate that echinocystic acids are potent glucocorticoid receptor regulators with selective transrepressional activities (dissociated from transactivation), highlighting the potential of echinocystic acid derivatives as more promising treatments for inflammatory conditions. © 2016 Elsevier Ltd
URI
http://hdl.handle.net/11615/72098
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