2015Crystal Growth & DesignRequires access

Direct Nanoscale Imaging of Calcium Oxalate Crystallization on Brushite Reveals the Mechanisms Underlying Stone Formation

Shiyan Li, Wenjun Zhang, Lijun Wang

Open publisher page 15 citations

Abstract

A mixture of calcium oxalate and calcium phosphate is a source of chronic human disease, forming kidney stones. However, the mechanisms of pathological biomineralization and its modulation by natural inhibitors such as osteopontin (OPN) proteins are poorly defined at the nanoscale. Here, the in vitro formation of calcium oxalate monohydrate (COM) concretions having brushite nidi is observed using in situ atomic force microscopy (AFM) in a simulated acidic urinary milieu. We quantify the dissolution kinetics of the [101] Cc, [1̅00] Cc, and [101̅] Cc steps on the brushite (CaHPO 4 ·2H 2 O, DCPD) (010) surfaces by oxalate, two urinary constituents. In support of clinical observations, we further demonstrate the inhibitory effect of phosphorylated OPN peptides on the step retreat rates through step-specific interactions, this in turn regulating the kinetics of COM nucleation and aggregation at the expense of brushite crystals by means of the interfacial mineral replacement reactions. The definition of respective roles for DCPD and OPN peptides thereby offers general insights concerning the control of kidney stone formation and the mechanisms through which aberrant crystallization kinetics is inhibited.

About this research paper

What this paper is about

A mixture of calcium oxalate and calcium phosphate is a source of chronic human disease, forming kidney stones. However, the mechanisms of pathological biomineralization and its modulation by natural inhibitors such as osteopontin (OPN) proteins are poorly defined at the nanoscale. Here, the in vitro formation of calcium oxalate monohydrate (COM) concretions having brushite nidi is observed using in situ atomic force microscopy (AFM) in a simulated acidic urinary milieu. We quantify the dissolution kinetics of the [101] Cc, [1̅00] Cc, and [101̅] Cc steps on the brushite (CaHPO 4 ·2H 2 O, DCPD) (010) surfaces by oxalate, two urinary constituents. In support of clinical observations, we further demonstrate the inhibitory effect of phosphorylated OPN peptides on the step retreat rates through step-specific interactions, this in turn regulating the kinetics of COM nucleation and aggregation at the expense of brushite crystals by means of the interfacial mineral replacement reactions. The definition of respective roles for DCPD and OPN peptides thereby offers general insights concerning the control of kidney stone formation and the mechanisms through which aberrant crystallization kinetics is inhibited.

Why it matters

OpenAlex reports 15 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

A mixture of calcium oxalate and calcium phosphate is a source of chronic human disease, forming kidney stones. However, the mechanisms of pathological biomineralization and its modulation by natural inhibitors such as osteopontin (OPN) proteins are poorly defined at the nanoscale. Here, the in vitro formation of calcium oxalate monohydrate (COM) concretions having brushite nidi is observed using in situ atomic force microscopy (AFM) in a simulated acidic urinary milieu. We quantify the dissolution kinetics of the [101] Cc, [1̅00] Cc, and [101̅] Cc steps on the brushite (CaHPO 4 ·2H 2 O, DCPD) (010) surfaces by oxalate, two urinary constituents. In support of clinical observations, we further demonstrate the inhibitory effect of phosphorylated OPN peptides on the step retreat rates through step-specific interactions, this in turn regulating the kinetics of COM nucleation and aggregation at the expense of brushite crystals by means of the interfacial mineral replacement reactions. The definition of respective roles for DCPD and OPN peptides thereby offers general insights concerning the control of kidney stone formation and the mechanisms through which aberrant crystallization kinetics is inhibited.

Key concepts: Brushite, Calcium oxalate, Biomineralization, Crystallization, Chemistry, Kidney stones, Oxalate, Kinetics

Related papers

Back to paper searchBrowse research topicsOriginal source
Direct Nanoscale Imaging of Calcium Oxalate Crystallization on Brushite Reveals the Mechanisms Underlying Stone Formation — Research Paper | ScholarLens