Project description:Urolithiasis is a common disease to human beings, and idiopathic hypercalciuria (IH) is an important risk factor of calcium urolithiasis, previous studies strongly suggested that the decreased tubular Ca2+ reabsorption played a key role of hypercalciuria. However,the molecular mechanism of IH-urolithiasis formation is still not completely elucidated. GHS rat is regarded as an ideal animal model of calcium urolithiasis, reveals many identical pathophysiologic characteristics with IH patients . We analyzed miRNA expression profiles of the kidney of GHS rat in order to find out the target genes and signaling pathways in the pathogenesis of IH.
Project description:Urolithiasis is a common desease to human beings, and idiopathic hypercalciuria (IH) is an important risk factor of calcium urolithiasis, previous studies strongly suggested that the decreased tubular Ca2+ reabsorption played a key role of hypercalciuria. However,the molecular mechanism of IH-urolithiasis formation is still not completely elucidated. GHS rat is regarded as an ideal animal model of calcium urolithiasis, reveals many identical pathophysiologic characteristics with IH patients . We analyzed mRNA expression profiles of the kidney of GHS rat in order to find out the target genes and signaling pathways in the pathogenesis of IH.
Project description:Various urinary parameters have been used to determine kidney stone risk. However, almost all of the widely used lithogenic indices rely on urinary concentrations of small molecules/ions and pH. We hypothesized that urinary macromolecules (especially proteins) also play a critical role in determining the stone risk. Herein, we purified the complexed urinary proteins (proteome) from healthy individuals and calcium oxalate (CaOx) stone formers and performed various crystal assays and quantitative proteomics to compare them. While the normal urinary proteome inhibited CaOx stone-forming mechanisms (i.e., crystallization, growth and aggregation), the stone formers’ urinary proteome promoted all these CaOx crystal parameters. Descriptive proteomics by nanoLC-ESI-LTQ-Orbitrap-MS/MS analysis identified 203 and 381 proteins in the urine of healthy individuals and stone formers, respectively. Analyses of physicochemical properties revealed only molecular mass and isoelectric point that slightly increased in the stone formers’ urine, whereas instability index, grand average of hydrophathicity (GRAVY) and amino acid composition were comparable. Interestingly, proportion of oxidatively modified proteins (particularly those with methionine oxidation, methionine dioxidation and cysteine trioxidation) markedly increased (~2.5-fold) in the stone formers’ urine. Quantitative proteomics revealed 89 increased and 56 decreased proteins in the stone formers’ urine. The oxidized proteins had a greater proportion (>3-fold) in the increased proteins (77%) compared with the decreased ones (23%), whereas the non-oxidized proteins showed comparable proportions (54% and 46%, respectively). Functional enrichment analyses revealed a correlation between the increased proteins and oxidative stress biological processes and molecular functions. Finally, ELISA confirmed the significantly increased levels of oxidized proteins in the stone formers’ urine compared with that of healthy individuals. These data implicate that oxidatively modified proteome serves as the key pathogenic factor or risk for CaOx kidney stone formation.