Literature DB >> 8619372

Ultrastructural immunodetection of osteopontin and osteocalcin as major matrix components of renal calculi.

M D McKee1, A Nanci, S R Khan.   

Abstract

The organic matrix of renal calculi has long been considered to influence the crystal growth that occurs in these pathological mineral deposits. Recent advances in characterizing individual organic moieties from mineralized tissues in general and the combined use of antibodies raised against these molecules with different immunocytochemical approaches have allowed their precise distribution to be visualized in a variety of normal and pathological mineralized tissues. The present ultrastructural study reports on the epithelial expression and extracellular localization of several noncollagenous proteins in rat and human kidney stones using high-resolution colloidal-gold immunocytochemistry. To this end, we have examined in an ethylene glycol-induced calcium oxalate model of urolithiasis in the rat, and in human kidney stones, the distribution of certain noncollagenous and plasma proteins known to accumulate in bone and other mineralized tissues that include osteopontin, osteocalcin, bone sialoprotein, albumin, and alpha 2HS-glycoprotein. Of these proteins, osteopontin (uropontin) and osteocalcin (or osteocalcin-related gene/protein) were prominent constituents of the calcium oxalate-associated crystal "ghosts" found in the nuclei, lamellae, and striations of the organic matrix of lumenal renal calculi in the rat and of small crystal ghosts found within epithelial cells. Immunocytochemical labeling for both proteins of the content of secretory granules in tubular epithelial cells from treated rats, together with labeling of a similarly textured organic material in the tubular lumen, provides evidence for cosecretion of osteopontin and osteocalcin by epithelial cells, their transit through the urinary filtrate, and ultimately their incorporation into growing renal calculi. In normal rat kidney, osteopontin was localized to the Golgi apparatus of thin loop of Henle cells. In human calcium oxalate monohydrate stones, osteopontin was similarly detected in the lamellae and striations of the organic matrix. Based on these data, it is proposed that during urolithiasis, secretion of osteopontin (uropontin) and osteocalcin (or osteocalcin-related gene/protein), and the subsequent incorporation of these proteins into kidney stone matrix, may influence the nucleation, growth processes, aggregation, and/or tubular adhesion of renal calculi in mammalian kidneys.

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Year:  1995        PMID: 8619372     DOI: 10.1002/jbmr.5650101211

Source DB:  PubMed          Journal:  J Bone Miner Res        ISSN: 0884-0431            Impact factor:   6.741


  39 in total

1.  Cell-mediated crystallization of calcium oxalate in plants

Authors: 
Journal:  Plant Cell       Date:  1999-04       Impact factor: 11.277

2.  Pathogenesis of nephrolithiasis: recent insight from cell biology and renal pathology.

Authors:  Giovanni Gambaro; Antonia Fabris; Cataldo Abaterusso; Alex Cosaro; Monica Ceol; Federica Mezzabotta; Rossella Torregrossa; Emilia Tiralongo; Dorella Del Prete; Angela D'Angelo; Franca Anglani
Journal:  Clin Cases Miner Bone Metab       Date:  2008-05

3.  Role of osteopontin in early phase of renal crystal formation: immunohistochemical and microstructural comparisons with osteopontin knock-out mice.

Authors:  Masahito Hirose; Keiichi Tozawa; Atsushi Okada; Shuzo Hamamoto; Yuji Higashibata; Bin Gao; Yutaro Hayashi; Hideo Shimizu; Yasue Kubota; Takahiro Yasui; Kenjiro Kohri
Journal:  Urol Res       Date:  2011-08-11

Review 4.  Is oxidative stress, a link between nephrolithiasis and obesity, hypertension, diabetes, chronic kidney disease, metabolic syndrome?

Authors:  Saeed R Khan
Journal:  Urol Res       Date:  2012-01-04

5.  Immunocytochemical localization of Tamm-Horsfall protein in the kidneys of normal and nephrolithic rats.

Authors:  J A Gokhale; M D McKee; S R Khan
Journal:  Urol Res       Date:  1996

6.  Effects of bone morphogenetic protein-2 and transforming growth factor beta1 on gene expression of transcription factors, AJ18 and Runx2 in cultured osteoblastic cells.

Authors:  Minoru Takagi; Naoko Kamiya; Tomihisa Takahashi; Shinsuke Ito; Mitsuharu Hasegawa; Naoto Suzuki; Koji Nakanishi
Journal:  J Mol Histol       Date:  2004-01       Impact factor: 2.611

Review 7.  Interstitial calcinosis in renal papillae of genetically engineered mouse models: relation to Randall's plaques.

Authors:  Xue-Ru Wu
Journal:  Urolithiasis       Date:  2014-08-06       Impact factor: 3.436

Review 8.  The future of stone research: rummagings in the attic, Randall's plaque, nanobacteria, and lessons from phylogeny.

Authors:  Rosemary Lyons Ryall
Journal:  Urol Res       Date:  2008-02-20

9.  Specific adsorption of osteopontin and synthetic polypeptides to calcium oxalate monohydrate crystals.

Authors:  Adam Taller; Bernd Grohe; Kem A Rogers; Harvey A Goldberg; Graeme K Hunter
Journal:  Biophys J       Date:  2007-05-11       Impact factor: 4.033

10.  Inhibition of hydroxyapatite formation by osteopontin phosphopeptides.

Authors:  David A Pampena; Karen A Robertson; Olga Litvinova; Gilles Lajoie; Harvey A Goldberg; Graeme K Hunter
Journal:  Biochem J       Date:  2004-03-15       Impact factor: 3.857

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