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Erschienen in: Urolithiasis 2/2004

01.05.2004 | Original Paper

The effect of ions at the surface of calcium oxalate monohydrate crystals on cell-crystal interactions

verfasst von: John C. Lieske, Gerard Farell, Sergio Deganello

Erschienen in: Urolithiasis | Ausgabe 2/2004

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Abstract

Magnesium is an abundant ion in biologic systems, including renal tubular fluid; however, the precise role of magnesium during the interaction of calcium oxalate crystals with cells has not been previously defined. In addition, the respective roles of calcium and hydrogen ions during the cell-crystal bonding interaction remain poorly defined. Here we report an atomic level three-dimensional study of a single crystal of calcium oxalate monohydrate (COM; whewellite) which was bathed in a solution of magnesium hexahydrate for 1 year. Magnesium was not incorporated into the structure of whewellite to any significant degree. Instead, COM accepted magnesium primarily as an adsorbate in a binding configuration which, as a surface phenomenon, is controlled by localized charge effects. The effect of magnesium and calcium on the efficiency of calcium oxalate crystal binding to renal cells was also investigated. When present in supraphysiologic concentrations (greater than 0.1 M), magnesium progressively inhibited adhesion of pre-formed COM crystals to cultured renal cells. Therefore, even though magnesium does not incorporate into the crystal structure of calcium oxalate, magnesium can exert important surface effects and change the interaction of pre-formed COM with molecules anchored on the cell surface. Similarly, binding was nearly blocked when the exogenous calcium concentration was ≥0.1 M (supraphysiologic range), although in lower concentrations (within the physiologic range) exogenous calcium promoted crystal adhesion. Finally, the ambient hydrogen ion concentration also influenced calcium oxalate crystal interactions with renal cells, with maximal binding occurring at a pH of 4. Therefore, hypercalciuria and/or an acidic urine could each promote renal stone formation via increased crystal adhesion to renal cells, a previously under-appreciated potential mechanism.
Fußnoten
1
The [010] and [100] projections are down the b and a axis of the COM crystal lattice, respectively.
 
2
The space group identifies the set of all symmetry operations of a crystal pattern in three dimensions: P identifies the primitive lattice 21 a screw axis, and n a glide plane normal to the latter.
 
3
R is the reliability factor. This is a measure of the agreement between a set of observed data and a set of calculated values for the same data; a value of 0.04 is considered very good.
 
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Metadaten
Titel
The effect of ions at the surface of calcium oxalate monohydrate crystals on cell-crystal interactions
verfasst von
John C. Lieske
Gerard Farell
Sergio Deganello
Publikationsdatum
01.05.2004
Verlag
Springer-Verlag
Erschienen in
Urolithiasis / Ausgabe 2/2004
Print ISSN: 2194-7228
Elektronische ISSN: 2194-7236
DOI
https://doi.org/10.1007/s00240-003-0391-5

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