Nitrogen-Bisphosphonates Block Retinoblastoma Phosphorylation and Cell Growth by Inhibiting the Cholesterol Biosynthetic Pathway in a Keratinocyte Model for Esophageal Irritation
- 1 February 2001
- journal article
- Published by American Society for Pharmacology & Experimental Therapeutics (ASPET) in Molecular Pharmacology
- Vol. 59 (2), 193-202
- https://doi.org/10.1124/mol.59.2.193
Abstract
The surprising discovery that nitrogen-containing bisphosphonates (N-BPs) act via inhibition of the mevalonate-to-cholesterol pathway raised the possibility that esophageal irritation by N-BPs is mechanism-based. We used normal human epidermal keratinocytes (NHEKs) to model N-BP effects on stratified squamous epithelium of the esophagus. The N-BPs alendronate and risedronate inhibited NHEK growth in a dose-dependent manner without inducing apoptosis. N-BPs (30 μM) caused accumulation of cells in S phase and increased binucleation (inhibited cytokinesis). Consistent with N-BP inhibition of isoprenylation, geranylgeraniol or farnesol prevented accumulation in S phase. Binucleation was also induced by the 3-hydroxy-3-methylglutaryl-coenzyme A reductase inhibitor lovastatin and by the squalene synthase inhibitor zaragozic acid A and was prevented by adding low-density lipoprotein. At 300 μM, N-BPs reduced expression of cyclin-dependent kinase (cdk) 2 and cdk4 and enhanced expression of p21waf1 and p27kip1 and their binding to cdks with corollary hypophosphorylation of retinoblastoma. Lovastatin and zaragozic acid A produced similar effects, except that p21waf1 expression and binding to cdks was not induced. Growth inhibition, but not binucleation, was also caused by the geranylgeranyl transferase I inhibitor, GGTI-298, which also enhanced cdk2 and cdk4 association with p27kip1. These findings are consistent with suppression of epithelial cell growth by N-BPs via inhibition of the mevalonate pathway and the consequent reduction in cholesterol synthesis, which blocks cytokinesis, and in geranylgeranylation, which interferes with progression through the cell cycle.Keywords
This publication has 35 references indexed in Scilit:
- N‐bisphosphonates cause gastric epithelial injury independent of effects on the microcirculationAlimentary Pharmacology & Therapeutics, 1999
- Lovastatin Inhibits G1/S Transition of Normal Human B-Lymphocytes Independent of ApoptosisExperimental Cell Research, 1999
- Farnesyl Pyrophosphate Synthase Is the Molecular Target of Nitrogen-Containing BisphosphonatesBiochemical and Biophysical Research Communications, 1999
- N-Arylpiperazinone Inhibitors of Farnesyltransferase: Discovery and Biological ActivityJournal of Medicinal Chemistry, 1999
- The Role of Geranylgeranylation in Bone Resorption and Its Suppression by Bisphosphonates in Fetal Bone Explants In Vitro: A Clue to the Mechanism of Action of Nitrogen-Containing BisphosphonatesJournal of Bone and Mineral Research, 1999
- Lovastatin mediated G1 arrest in normal and tumor breast cells is through inhibition of CDK2 activity and redistribution of p21 and p27, independent of p53Oncogene, 1998
- SKP1 Connects Cell Cycle Regulators to the Ubiquitin Proteolysis Machinery through a Novel Motif, the F-BoxCell, 1996
- Structural Basis for the Barrier Abnormality Following Inhibition of HMG CoA Reductase in Murine EpidermisJournal of Investigative Dermatology, 1992
- The Lovastatin-Treated Rodent: A New Model of Barrier Disruption and Epidermal HyperplasiaJournal of Investigative Dermatology, 1991
- Efficacy and long-term adverse effect pattern of lovastatinThe American Journal of Cardiology, 1988