The Synthesized Plant Metabolite 3,4,5-Tri-O-Galloylquinic Acid Methyl Ester Inhibits Calcium Oxalate Crystal Growth in a Drosophila Model, Downregulates Renal Cell Surface Annexin A1 Expression, and Decreases Crystal Adhesion to Cells.
Mohamed A Abd El-SalamJairo Kenupp BastosJing Jing HanDaniel PrevidiEduardo B CoelhoPaulo Marcos DonateMichael F RomeroJohn LieskePublished in: Journal of medicinal chemistry (2018)
The plant metabolite 3,4,5-tri-O-galloylquinic acid methyl ester (TGAME, compound 6) was synthesized, and its potential effect on calcium oxalate monohydrate (COM) crystal binding to the surface of Madin-Darby canine kidney cells type I (MDCKI) and crystal growth in a Drosophila melanogaster Malpighian tubule (MT) model were investigated. Membrane, cytosolic, and total annexin A1 (AxA1), α-enolase, and heat shock protein 90 (HSP90) amounts were examined by Western blot analysis after subcellular fractionation, then confirmed by immunofluorescence staining of cultured cells. Pretreatment of MDCKI cells with TGAME for up to 6 h significantly diminished COM crystal binding in a concentration-dependent manner. TGAME significantly inhibited AxA1 surface expression by immunofluorescence microscopy, whereas intracellular AxA1 increased. Western blot analysis confirmed AxA1 expression changes in the membrane and cytosolic fractions of compound-treated cells, whereas whole cell AxA1 remained unchanged. TGAME also significantly decreased the size, number, and growth of calcium oxalate (CaOx) crystals induced in a Drosophila melanogaster MT model and possessed a potent antioxidant activity in a DPPH assay.
Keyphrases
- induced apoptosis
- heat shock protein
- cell cycle arrest
- drosophila melanogaster
- endoplasmic reticulum stress
- stem cells
- signaling pathway
- high throughput
- escherichia coli
- binding protein
- mass spectrometry
- cell proliferation
- heat shock
- cell therapy
- high resolution
- staphylococcus aureus
- bone marrow
- optical coherence tomography
- biofilm formation
- atomic force microscopy
- data analysis
- stress induced