Literature DB >> 21784483

Ultrastructural investigation of crystal deposits in Npt2a knockout mice: are they similar to human Randall's plaques?

Saeed R Khan1, Benjamin K Canales.   

Abstract

PURPOSE: Idiopathic Ca oxalate stones may develop with attachment to renal interstitial Ca phosphate deposits (Randall's plaques). Sodium phosphate cotransporter (Npt2a) null mice have hypercalciuria and hyperphosphaturia, and produce tubular and interstitial Ca phosphate deposits. To determine whether this mouse is suitable for Randall's plaque investigations we chronologically studied Ca phosphate deposit sites, structure and composition.
MATERIALS AND METHODS: The kidneys of Npt2a null mice 2 days to 1 year old were examined by light, scanning and transmission electron microscopy. Electron diffraction and energy dispersive x-ray microanalyses were done to determine mineral composition.
RESULTS: Poorly crystalline, biological apatite deposits were seen in collecting duct lumina. Deposits consisted of aggregates approximately 5 μm in diameter appearing as microspheres of concentrically organized needle or plate-like, matrix rich crystals. Epithelium/crystal interfaces were filled with membrane bound vesicles. Some tubules were completely occluded by crystals and occasionally lost the epithelium while crystals moved into the interstitium.
CONCLUSIONS: Ca phosphate crystals formed in the tubular lumina and were organized as microspheres. The aggregation of Ca phosphate crystals produced nuclei, which grew by adding crystals at the periphery. They eventually became large enough to occlude the tubular lumina and obliterate the tubular epithelium, leading to the relocation of microliths into the interstitium. The pathogenesis of interstitial deposits in Npt2a null mice appears different from that proposed for Randall's plaques. Since Npt2a null mice purge the renal crystal deposits, these mice may serve as a model in which to investigate the elimination of crystal deposits in children and adults with nephrocalcinosis.
Copyright © 2011 American Urological Association Education and Research, Inc. Published by Elsevier Inc. All rights reserved.

Entities:  

Mesh:

Substances:

Year:  2011        PMID: 21784483      PMCID: PMC3625924          DOI: 10.1016/j.juro.2011.04.109

Source DB:  PubMed          Journal:  J Urol        ISSN: 0022-5347            Impact factor:   7.450


  30 in total

1.  Urologic diseases in America project: urolithiasis.

Authors:  Margaret S Pearle; Elizabeth A Calhoun; Gary C Curhan
Journal:  J Urol       Date:  2005-03       Impact factor: 7.450

2.  Phosphate transport: molecular basis, regulation and pathophysiology.

Authors:  Harriet S Tenenhouse
Journal:  J Steroid Biochem Mol Biol       Date:  2006-12-23       Impact factor: 4.292

3.  Renal calcification in mice homozygous for the disrupted type IIa Na/Pi cotransporter gene Npt2.

Authors:  Hien Chau; Sherif El-Maadawy; Marc D McKee; Harriet S Tenenhouse
Journal:  J Bone Miner Res       Date:  2003-04       Impact factor: 6.741

4.  Longitudinal study of urinary excretion of phosphate, calcium, and uric acid in mutant NHERF-1 null mice.

Authors:  Edward J Weinman; Viresh Mohanlal; Nicholas Stoycheff; Fengying Wang; Deborah Steplock; Shirish Shenolikar; Rochelle Cunningham
Journal:  Am J Physiol Renal Physiol       Date:  2005-10-25

5.  Calcium phosphate/calcium oxalate crystal association in urinary stones: implications for heterogeneous nucleation of calcium oxalate.

Authors:  S R Khan
Journal:  J Urol       Date:  1997-01       Impact factor: 7.450

Review 6.  Cell biology of pathologic renal calcification: contribution of crystal transcytosis, cell-mediated calcification, and nanoparticles.

Authors:  Vivek Kumar; Gerard Farell; Shihui Yu; Sean Harrington; Lorraine Fitzpatrick; Ewa Rzewuska; Virginia M Miller; John C Lieske
Journal:  J Investig Med       Date:  2006-11       Impact factor: 2.895

7.  Calcium oxalate crystal deposition in kidneys of hypercalciuric mice with disrupted type IIa sodium-phosphate cotransporter.

Authors:  Saeed R Khan; Patricia A Glenton
Journal:  Am J Physiol Renal Physiol       Date:  2008-03-12

8.  A novel missense mutation in SLC34A3 that causes hereditary hypophosphatemic rickets with hypercalciuria in humans identifies threonine 137 as an important determinant of sodium-phosphate cotransport in NaPi-IIc.

Authors:  Graciana Jaureguiberry; Thomas O Carpenter; Stuart Forman; Harald Jüppner; Clemens Bergwitz
Journal:  Am J Physiol Renal Physiol       Date:  2008-05-14

Review 9.  Calcium oxalate crystal interaction with renal tubular epithelium, mechanism of crystal adhesion and its impact on stone development.

Authors:  S R Khan
Journal:  Urol Res       Date:  1995

10.  Deposition of calcium phosphate and calcium oxalate crystals in the kidneys.

Authors:  S R Khan; P A Glenton
Journal:  J Urol       Date:  1995-03       Impact factor: 7.450

View more
  16 in total

Review 1.  Histological aspects of the "fixed-particle" model of stone formation: animal studies.

Authors:  Saeed R Khan
Journal:  Urolithiasis       Date:  2016-11-28       Impact factor: 3.436

2.  Unified theory on the pathogenesis of Randall's plaques and plugs.

Authors:  Saeed R Khan; Benjamin K Canales
Journal:  Urolithiasis       Date:  2014-08-14       Impact factor: 3.436

3.  Biomimetic Randall's plaque as an in vitro model system for studying the role of acidic biopolymers in idiopathic stone formation.

Authors:  Archana Chidambaram; Douglas Rodriguez; Saeed Khan; Laurie Gower
Journal:  Urolithiasis       Date:  2014-08-15       Impact factor: 3.436

4.  Calcium Oxalate Stone Fragment and Crystal Phagocytosis by Human Macrophages.

Authors:  Sergei Kusmartsev; Paul R Dominguez-Gutierrez; Benjamin K Canales; Vincent G Bird; Johannes Vieweg; Saeed R Khan
Journal:  J Urol       Date:  2015-11-26       Impact factor: 7.450

5.  Impaired urinary osteopontin excretion in Npt2a-/- mice.

Authors:  Daniel Caballero; Yuwen Li; Julian Ponsetto; Chuanlong Zhu; Clemens Bergwitz
Journal:  Am J Physiol Renal Physiol       Date:  2016-10-26

Review 6.  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

7.  The kidney sodium-phosphate co-transporter alters bone quality in an age and gender specific manner.

Authors:  Adele L Boskey; Lyudmilla Lukashova; Lyudmila Spevak; Yan Ma; Saeed R Khan
Journal:  Bone       Date:  2013-01-17       Impact factor: 4.398

Review 8.  Kidney stones.

Authors:  Saeed R Khan; Margaret S Pearle; William G Robertson; Giovanni Gambaro; Benjamin K Canales; Steeve Doizi; Olivier Traxer; Hans-Göran Tiselius
Journal:  Nat Rev Dis Primers       Date:  2016-02-25       Impact factor: 52.329

9.  Genome-Wide Gene Expression Profiling of Randall's Plaques in Calcium Oxalate Stone Formers.

Authors:  Kazumi Taguchi; Shuzo Hamamoto; Atsushi Okada; Rei Unno; Hideyuki Kamisawa; Taku Naiki; Ryosuke Ando; Kentaro Mizuno; Noriyasu Kawai; Keiichi Tozawa; Kenjiro Kohri; Takahiro Yasui
Journal:  J Am Soc Nephrol       Date:  2016-06-13       Impact factor: 10.121

Review 10.  Randall's plaque and calcium oxalate stone formation: role for immunity and inflammation.

Authors:  Saeed R Khan; Benjamin K Canales; Paul R Dominguez-Gutierrez
Journal:  Nat Rev Nephrol       Date:  2021-01-29       Impact factor: 28.314

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.